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Single molecule localization microscopy has seen a remarkable growth since its first
experimental implementations about a decade ago. Despite its technical challenges,
it is already widely used in medicine and biology and is valued as a unique tool
to gain molecular information with high specificity. However, common illumination techniques do not allow the use of single molecule sensitive super-resolution
microscopy techniques such as direct stochastic optical reconstruction microscopy
(dSTORM) for whole cell imaging. In addition, they can potentially alter the
quantitative information.
In this thesis, I combine dSTORM imaging in three dimensions with lattice lightsheet illumination to gain quantitative molecular information from cells unperturbed by the illumination and cover slip effects. Lattice light-sheet illumination
uses optical lattices for beam shaping to restrict the illumination to the detectable
volume. I describe the theoretical background needed for both techniques and detail
the experimental realization of the system as well as the software that I developed
to efficiently evaluate the data.
Eventually, I will present key datasets that demonstrate the capabilities of the
developed microscope system with and without dSTORM. My main goal here was
to use these techniques for imaging the neural cell adhesion molecule (NCAM, also
known as CD56) in whole cells. NCAM is a plasma membrane receptor known to
play a key role in biological processes such as memory and learning. Combining
dSTORM and lattice light-sheet illumination enables the collection of quantitative
data of the distribution of molecules across the whole plasma membrane, and shows
an accumulation of NCAM at cell-cell interfaces. The low phototoxicity of lattice
light-sheet illumination further allows for tracking individual NCAM dimers in living cells, showing a significant dependence of its mobility on the actin skeleton of
the cell.
3d-Übergangsmetallphthalocyanin-Moleküle auf Metalloberflächen: Der Einfluss der d-Orbitalbesetzung
(2015)
Im Rahmen dieser Dissertation wird die Untersuchung von 3d-Übergangsmetallphthalocyanin- Molekülen (ÜMPc) – quadratisch-planaren organischen Molekülen, welche im Zentrum ein 3d-Übergangsmetallion besitzen – auf metallischen Oberflächen vorgestellt. Der Fokus dieser Arbeit liegt dabei auf dem Einfluss der d-Orbitalbesetzung auf die magnetischen, elektronischen und strukturellen Eigenschaften der adsorbierten Moleküle, die mit Hilfe der Rastertunnelmikroskopie und -spektroskopie charakterisiert wurden. Die gewonnen Ergebnisse werden zum Teil mit theoretischen Berechnungen analysiert und interpretiert.
Die erste Hälfte der experimentellen Auswertung behandelt die Untersuchung dieser Moleküle auf Ag(001) in Hinblick auf die Existenz einer magnetischen Wechselwirkung, bei der ein unkompensiertes magnetisches Moment des Moleküls durch die Substratelektronen abgeschirmt wird. Dieser Effekt wird als Kondo-Abschirmung bezeichnet und erzeugt in der Zustandsdichte des Moleküls eine Resonanz am Fermi-Niveau. Die Messungen zeigen, dass diese Resonanz ausschließlich am Zentralion von MnPc vorgefunden wird, wohingegen sie bei allen anderen 3d-Übergangsmetallphthalocyanin-Molekülen, die eine höhere d-Orbitalbesetzung besitzen, nicht vorhanden ist. Anhand theoretischer Berechnungen kann die Ursache für dieses Verhalten darauf zurückgeführt werden, dass von allen d-Orbitalen einzig das dz2-Orbital mit dem Substrat geeignet hybridisiert, um eine Kondo-Abschirmung zu erzeugen. Da ausschließlich MnPc einen unkompensierten Spin in diesem Orbital besitzt, kann die An- bzw. Abwesenheit
des Kondo-Effekts auf die unterschiedliche Besetzung des dz2-Orbitals zurückgeführt werden. Neben der eben erwähnten Kondo-Resonanz ist bei MnPc ein weiteres Merkmal am Fermi- Niveau überlagert. Durch die Analyse der räumlichen Verteilung, den Vergleich mit anderen Molekülen und der Manipulation des MnPc-Moleküls kann gezeigt werden, dass es sich bei diesem Merkmal um einen d-Orbitalzustand handelt. Die Manipulation des Moleküls durch gezieltes Entfernen von Wasserstoffatomen ermöglicht darüber hinaus die Stärke der Kondo-Abschirmung zu beeinflussen.
In der zweiten Hälfte der experimentellen Auswertung werden Moleküle auf bismutinduzierten Oberflächenlegierungen der Edelmetalle Cu(111) und Ag(111) untersucht. Diese Legierungen zeichnen sich durch einen ausgeprägten Rashba-Effekt aus, der durch eine Aufspaltung der Parabeldispersion und Aufhebung der Spin-Entartung im zweidimensionalen Elektronengas der Oberflächenlegierung charakterisiert ist. Das Wachstumsverhalten von CuPc und MnPc auf diesen Oberflächen zeigt ein sehr gegensätzliches Verhalten. Während bei MnPc die Substrat-Molekül-Wechselwirkung dominant ist, wodurch diese Moleküle immer einen festen Adsorptionsplatz auf der Oberfläche besitzen, ist diese Wechselwirkung bei CuPc schwach ausgeprägt. Aus diesem Grund wandern die CuPc-Moleküle zu den Stufenkanten und bilden Cluster. Das unterschiedliche Wachstumsverhalten der Moleküle lässt sich auf die partiell-gefüllten d-Orbitale von MnPc zurückführen, die aus der Molekülebene ragen, mit dem Substrat hybridisieren und damit das Molekül an das Substrat binden. Bei CuPc hingegen sind diese d-Orbitale gefüllt und die Hybridisierung kann nicht stattfinden.
Im letzten Abschnitt werden die elektronischen und magnetischen Eigenschaften von MnPc auf diesen Substraten behandelt, die einige Besonderheiten aufweisen. So bildet sich durch die Adsorption des Moleküls auf den Oberflächen eine Grenzschichtresonanz aus, die eine partielle Füllung erkennen lässt. Spektroskopiedaten, aufgenommen am Ort der Grenzschichtresonanz, weisen eine symmetrisch um das Fermi-Niveau aufgespaltene Resonanz auf. Die Intensität der unter- und oberhalb der Fermi-Energie befindlichen Resonanz zeigen dabei ein komplementäres Verhalten bzgl. der jeweiligen Lage auf der Grenzschichtresonanz: An den Orten, an denen die Resonanz unterhalb des Fermi-Niveaus ihre maximale Intensität besitzt, ist die Resonanz oberhalb des Fermi-Niveaus nicht vorhanden und umgekehrt. Diese experimentellen Beobachtungen werden mit einem Modellansatz erklärt, welcher die Wirkung eines effektiven Magnetfeldes und eine Spin-Filterung postuliert.
Measurements of ZZ production in the l(+)l(-)l'(+)l'(-) channel in proton-proton collisions at 13 TeV center-of-mass energy at the Large Hadron Collider are presented. The data correspond to 36.1 fb(-1) of collisions collected by the ATLAS experiment in 2015 and 2016. Here l and l ' stand for electrons or muons. Integrated and differential ZZ -> l(+)l(-)l'(+)l'(-) cross sections with Z -> l(+)l(-) candidate masses in the range of 66 GeV to 116 GeV are measured in a fiducial phase space corresponding to the detector acceptance and corrected for detector effects. The differential cross sections are presented in bins of twenty observables, including several that describe the jet activity. The integrated cross section is also extrapolated to a total phase space and to all standard model decays of Z bosons with mass between 66 GeV and 116 GeV, resulting in a value of 17.3 +/- 0.9 [+/- 0.6(start) +/- 0.5 (syst) +/- 0.6 (lumi)] pb. The measurements are found to be in good agreement with the standard model. A search for neutral triple gauge couplings is performed using the transverse momentum distribution of the leading Z boson candidate. No evidence for such couplings is found and exclusion limits are set on their parameters.
We report on a combined low-temperature scanning tunneling spectroscopy (STS), angle-resolved photoemission spectroscopy (ARPES), and density functional theory (DFT) investigation of the ( √3x√3) Pb/Ag (111)R30° surface alloy which provides a giant Rashba-type spin splitting. With STS we observed spectroscopic features that are assigned to two hole-like Rashba-split bands in the unoccupied energy range. By means of STS and quantum interference mapping we determine the band onsets, splitting strengths, and dispersions for both bands. The unambiguous assignment of scattering vectors is achieved by comparison to ARPES measurements. While intra-band scattering is found for both Rashba bands, inter-band scattering is only observed in the occupied energy range. Spin- and orbitally-resolved band structures were obtained by DFT calculations. Considering the scattering between states of different spin- and orbital character, the apparent deviation between experimentally observed scattering events and the theoretically predicted spin polarization could be resolved.
The superconducting properties of complex materials like the recently discovered iron-pnictides or strontium-ruthenate are often governed by multi-orbital effects. In order to unravel the superconductivity of those materials, we develop a multi-orbital implementation of the functional renormalization group and study the pairing states of several characteristic material systems. Starting with the iron-pnictides, we find competing spin-fluctuation channels that become attractive if the superconducting gap changes sign between the nested portions of the Fermi surface. Depending on material details like doping or pnictogen height, these spin fluctuations then give rise to $s_{\pm}$-wave pairing with or without gap nodes and, in some cases, also change the symmetry to $d$-wave. Near the transition from nodal $s_{\pm}$-wave to $d$-wave pairing, we predict the occurrence of a time-reversal symmetry-broken $(s+id)$-pairing state which avoids gap nodes and is therefore energetically favored. We further study the electronic instabilities of doped graphene, another fascinating material which has recently become accessible and which can effectively be regarded as multi-orbital system. Here, the hexagonal lattice structure assures the degeneracy of two $d$-wave pairing channels, and the system then realizes a chiral $(d+id)$-pairing state in a wide doping range around van-Hove filling. In addition, we also find spin-triplet pairing as well as an exotic spin-density wave phase which both become leading if the long-ranged hopping or interaction parameters are slightly modified, for example, by choosing different substrate materials. Finally, we consider the superconducting state of strontium-ruthenate, a possible candidate for chiral spin-triplet pairing with fascinating properties like the existence of half-quantum vortices obeying non-Abelian statistics. Using a microscopic three orbital description including spin-orbit coupling, we demonstrate that ferromagnetic fluctuations are still sufficient to induce this $\bs{\hat{z}}(p_x\pm ip_y)$-pairing state. The resulting superconducting gap reveals strong anisotropies on the $d_{xy}$-dominated Fermi-surface pocket and nearly vanishes on the other remaining two pockets.
We investigate transport measurements on all II-VI semiconductor resonant tunneling diodes (RTDs). Being very versatile, the dilute magnetic semiconductor (DMS) system (Zn,Be,Mn,Cd)Se is a perfect testbed for various spintronic device designs, as it allows for separate control of electrical and magnetic properties. In contrast to the ferromagnetic semiconductor (Ga,Mn)As, doping ZnSe with Mn impurities does not alter the electrical properties of the semiconductor, as the magnetic dopant is isoelectric in the ZnSe host.
We derive a multi-species BGK model with velocity-dependent collision frequency for a non-reactive, multi-component gas mixture. The model is derived by minimizing a weighted entropy under the constraint that the number of particles of each species, total momentum, and total energy are conserved. We prove that this minimization problem admits a unique solution for very general collision frequencies. Moreover, we prove that the model satisfies an H-Theorem and characterize the form of equilibrium.
We present a supersymmetric left-right model which predicts gauge coupling unification close to the string scale and extra vector bosons at the TeV scale. The subtleties in constructing a model which is in agreement with the measured quark masses and mixing for such a low left-right breaking scale are discussed. It is shown that in the constrained version of this model radiative breaking of the gauge symmetries is possible and a SM-like Higgs is obtained. Additional CP-even scalars of a similar mass or even much lighter are possible. The expected mass hierarchies for the supersymmetric states differ clearly from those of the constrained MSSM. In particular, the lightest down-type squark, which is a mixture of the sbottom and extra vector-like states, is always lighter than the stop. We also comment on the model’s capability to explain current anomalies observed at the LHC.
For the realization of a programmable logic device, or indeed any nanoscale device, we need a reliable method to probe the magnetization direction of local domains. For this purpose we extend investigations on the previously discovered tunneling anisotropic magneto resistance effect (TAMR) by scaling the pillar size from 100 µm down to 260 nm. We start in chapter 4 with a theoretical description of the TAMR effect and show experimental data of miniaturized pillars in chapter 5. With such small TAMR probes we are able to locally sense the magnetization on the 100 nm scale. Sub-micron TAMR and anisotropic magneto resistance (AMR) measurements of sub-millimeter areas show that the behavior of macroscopic (Ga,Mn)As regions is not that of a true macrospin, but rather an ensemble average of the behavior of many nearly identical macrospins. This shows that the magnetic anisotropies of the local regions are consistent with the behavior extracted from macroscopic characterization. A fully electrically controllable read-write memory device out the ferromagnetic semiconductor (Ga,Mn)As is presented in chapter 6. The structure consists of four nanobars which are connected to a circular center region. The first part of the chapter describes the lithography realization of the device. We make use of the sub-micron TAMR probes to read-out the magnetization state of a 650 nm central disk. Four 200 nm wide nanobars are connected to the central disk and serve as source and drain of a spin-polarized current. With the spin-polarized current we are able to switch the magnetization of the central disk by means of current induced switching. Injecting polarized holes with a spin angular momentum into a magnetic region changes the magnetization direction of the region due to the p-d exchange interaction between localized Mn spins and itinerant holes. The magnetization of the central disk can be controlled fully electrically and it can serve as one bit memory element as part of a logic device. In chapter 7 we discuss the domain wall resistance in (Ga,Mn)As. At the transition from nanobars to central disk we are able to generate 90° and 180° domain walls and measure their resistance. The results presented from chapter 5 to 7 combined with the preexisting ultracompact (Ga,Mn)As-based memory cell of ref. [Papp 07c] are the building blocks needed to realize a fully functioning programmable logic device. The work of ref. [Papp 07c] makes use of lithographically engineered strain relaxation to produce a structure comprised of two nanobars with mutually orthogonal uniaxial easy axes, connected by a narrow constriction. Measurements showed that the resistance of the constriction depends on the relative orientation of the magnetization in the two bars. The programmable logic device consists of two central disks connected by a small constriction. The magnetization of the two central disks are used as the input bits and the constriction serves as the output during the logic operation. The concept is introduced in the end of chapter 6 and as an example for a logic operation an XOR gate is presented. The functionality of the programmable logic scheme presented here can be straightforwardly extended to produce multipurpose functional elements, where the given geometry can be used as various different computational elements depending on the number of input bits and the chosen electrical addressing. The realization of such a programmable logic device is shown in chapter 8, where we see that the constriction indeed can serve as a output of the logic operation because its resistance is dependent on the relative magnetization state of both disks. Contrary to ref. [Papp 07c], where the individual magnetic elements connected to the constriction only have two non-volatile magnetic states, each disk in our scheme connected to the constriction has four non-volatile magnetic states. Switching the magnetization of a central disk with an electrical current does not only change the TAMR read-out of the respective disk, it also changes the resistance of the constriction. The resistance polar plot of the constriction maps the relative magnetization states of the individual disks. The presented device design serves as an all-electrical, all-semiconductor logic element. It combines a memory cell and data processing in a single monolithic paradigm.
In this thesis, I present a model system for carbohydrate interactions with single-crystalline Ru surfaces. Geometric and electronic properties of copper phthalocyanine (CuPc) on top of graphene on hexagonal Ru(0001), rectangular Ru(10-10) and vicinal Ru(1,1,-2,10) surfaces have been studied. First, the Fermi surfaces and band structures of the three Ru surfaces were investigated by high-resolution angle-resolved photoemission spectroscopy. The experimental data and theoretical calculations allow to derive detailed information about the momentum-resolved electronic structure. The results can be used as a reference to understand the chemical and catalytic properties of Ru surfaces. Second, graphene layers were prepared on the three different Ru surfaces. Using low-energy electron diffraction and scanning tunneling microscopy, it was found that graphene can be grown in well-ordered structures on all three surfaces, hexagonal Ru(0001), rectangular Ru(10-10) and vicinal Ru(1,1,-2,10), although they have different surface symmetries. Evidence for a strong interaction between graphene and Ru surfaces is a 1.3-1.7e V increase in the graphene pi-bands binding energy with respect to free-standing graphene sheets. This energy variation is due to the hybridization between the graphene pi bands and the Ru 4d electrons, while the lattice mismatch does not play an important role in the bonding between graphene and Ru surfaces. Finally, the geometric and electronic structures of CuPc on Ru(10-10), graphene/Ru(10-10), and graphene/Ru(0001) have been studied in detail. CuPc molecules can be grown well-ordered on Ru(10-10) but not on Ru(0001). The growth of CuPc on graphene/Ru(10-10) and Ru(0001) is dominated by the Moire pattern of graphene. CuPc molecules form well-ordered structures with rectangular unit cells on graphene/Ru(10-10) and Ru(0001). The distance of adjacent CuPc molecules is 1.5 and 1.3 nm on graphene/Ru(0001) and 1.54 and 1.37 nm on graphene/Ru(10-10). This indicates that the molecule-substrate interaction dominates over the intermolecular interaction for CuPc molecules on graphene/Ru(10-10) and graphene/Ru(0001).
A semiempirical model is presented that correlates the broadening of the absorption edge with both transitions below the energy gap and with transitions by the Kane band model. This model correctly fits both the absorption and luminescence spectra of narrow-gap (Hg,Cd)Te samples that have been grown by the traveling heater method as well as by molecular-beam epitaxy. The accuracy of the band-gap determination is enhanced by this model.
The possibility of investigating macroscopic coherent quantum states in polariton condensates and of engineering polariton landscapes in semiconductors has triggered interest in using polaritonic systems to simulate complex many-body phenomena. However, advanced experiments require superior trapping techniques that allow for the engineering of periodic and arbitrary potentials with strong on-site localization, clean condensate formation, and nearest-neighbor coupling. Here we establish a technology that meets these demands and enables strong, potentially tunable trapping without affecting the favorable polariton characteristics. The traps are based on a locally elongated microcavity which can be formed by standard lithography. We observe polariton condensation with non-resonant pumping in single traps and photonic crystal square lattice arrays. In the latter structures, we observe pronounced energy bands, complete band gaps, and spontaneous condensation at the M-point of the Brillouin zone.
Time-resolved optical spectroscopy has become an important tool to investigate the dynamics of quantum mechanical processes in matter. In typical applications, a first “pump” pulse excites the system under investigation from the thermal equilibrium to an excited state, and a second variable time-delayed “probe” pulse then maps the dynamics of the excited system. Although advanced nonlinear techniques have been developed to investigate, e.g., coherent quantum effects, all of these techniques are limited in their spatial resolution. The laser focus diameter has a lower bound given by Abbe’s diffraction limit, which is roughly half the optical excitation wavelength—corresponding to about 400nm in the presented experiments. In the time-resolved experiments that have been suggested so far, averaging over the sample volume within this focus cannot be avoided. In this thesis, two approaches were developed to overcome the diffraction limit in optical spectroscopy and to enable the investigation of coherent processes on the nanoscale. In the first approach, analytic solutions were found to calculate optimal polarizationshaped laser pulses that provide optical near-field pump–probe pulse sequences in the vicinity of a nanostructure. These near-field pulse sequences were designed to allow excitation of a quantum system at one specific position at a certain time and probing at a different position at a later time. In the second approach, the concept of coherent two-dimensional (2D) spectroscopy, which has had great impact on the investigation of coherent quantum effects in recent years, was combined with photoemission electron microscopy, which yields a spatial resolution well below the optical diffraction limit. Using the analytic solutions, optical near fields were investigated in terms of spectroscopic applications. Near fields that are excited with polarization-shaped femtosecond laser pulses in the vicinity of appropriate nanostructures feature two properties that are especially interesting in the view of spectroscopic applications: On the one hand, control of the spatial distribution of the optical fields is achieved on the order of nanometers. On the other hand, the temporal evolution of these fields can be adjusted on the order of femtoseconds. In this thesis, solutions were found to calculate the optimal polarizationshaped laser pulses that control the near field in a general manner. The main idea to achieve this deterministic control was to disentangle the spatial and temporal near-field control. First, the spatial distribution of the optical near field was controlled by assigning the correct state of polarization for each frequency within the polarization-shaped laser pulse independently. The remaining total phase—not employed for spatial control—was then used for temporal near-field compression, which, in experimental applications, would lead to an enhancement of the nonlinear signal at the respective location. In contrast to the use of optical near fields, where pump–probe sequences themselves are localized below the diffraction limit and the detection does not have to provide the spatial resolution, a different approach was suggested in this thesis to gain spectroscopic information on the nanoscale. The new method was termed “Coherent two-dimensional (2D) nanoscopy” and transfers the concept of “conventional” coherent 2D spectroscopy to photoemission electron microscopy. The pulse sequences used for the investigation of quantum systems in this method are still limited by diffraction. However, the new key concept is to detect locally generated photoelectrons instead of optical signals. This yields a spatial resolution that is well below the optical diffraction limit. In “conventional” 2D spectroscopy a triple-pulse sequence initiates a four wave mixing process that creates a coherence. In a quantum mechanical process, this coherence is converted into a population by emission of an electric field, which is measured in the experiment. Contrarily, in the developed 2D nanoscopy, four-wave mixing is initiated by a quadruple-pulse sequence, which leaves the quantum system in an electronic population. This electronic population carries coherent information about the investigated quantum system and can be mapped with a spatial resolution down to a few nanometers given by the spatial resolution of the photoemission electron microscope. Hence, 2D nanoscopy can be considered a generalization of time-resolved photoemission experiments. In the future, it may be of similar beneficial value for the field of photoemission research as “conventional” 2D spectroscopy has proven to be for optical spectroscopy and nuclear magnetic resonance experiments. In a first experimental implementation of coherent 2D nanoscopy coherent processes on a corrugated silver surface were measured and unexpected long coherence lifetimes could be determined.
A search for massive coloured resonances which are pair-produced and decay into two jets is presented. The analysis uses 36.7 fb(-1) of root s = 13 TeV pp collision data recorded by the ATLAS experiment at the LHC in 2015 and 2016. No significant deviation from the background prediction is observed. Results are interpreted in a SUSY simplified model where the lightest supersymmetric particle is the top squark, (t) over tilde, which decays promptly into two quarks through R-parity-violating couplings. Top squarks with masses in the range 100 GeV < m((T) over tilde) < 410 GeV are excluded at 95% confidence level. If the decay is into a b-quark and a light quark, a dedicated selection requiring two b-tags is used to exclude masses in the ranges 100 GeV < m((t) over tilde) < 470 GeV and 480 GeV < m(<(t)over tilde>) < 610 GeV. Additional limits are set on the pair-production of massive colour-octet resonances.
A search for heavy resonances decaying into a Higgs boson (H) and a new particle (X) is reported, utilizing 36.1 fb(-1) of proton-proton collision data at root s = 13 TeV collected during 2015 and 2016 with the ATLAS detector at the CERN Large Hadron Collider. The particle Xis assumed to decay to a pair of light quarks, and the fully hadronic final state XH -> q (q) over bar 'b (b) over bar is analysed. The search considers the regime of high XH resonance masses, where the X and H bosons are both highly Lorentz-boosted and are each reconstructed using a single jet with large radius parameter. A two-dimensional phase space of XH mass versus X mass is scanned for evidence of a signal, over a range of XH resonance mass values between 1 TeV and 4 TeV, and for X particles with masses from 50 GeV to 1000 GeV. All search results are consistent with the expectations for the background due to Standard Model processes, and 95% CL upper limits are set, as a function of XH and X masses, on the production cross-section of the XH -> q (q) over bar 'b (b) over bar resonance. (c) 2018 The Author(s). Published by Elsevier B.V.
A search for Secluded Dark Matter annihilation in the Sun using 2007-2012 data of the ANTARES neutrino telescope is presented. Three different cases are considered: a) detection of dimuons that result from the decay of the mediator, or neutrino detection from: b) mediator that decays into a dimuon and, in turn, into neutrinos, and c) mediator that decays directly into neutrinos. As no significant excess over background is observed, constraints are derived on the dark matter mass and the lifetime of the mediator.
The discovery of the Giant Magneto Resistance (GMR) effect in 1988 by Albert Fert [Baib 88] and Peter Grünberg [Bina 89] led to a rapid development of the field of spintronics and progress in the information technology. Semiconductor based spintronics, which appeared later, offered a possibility to combine storage and processing in a single monolithic device. A direct result is reduced heat dissipation. The observation of the spin Seebeck effect by Ushida [Uchi 08] in 2008 launched an increased interest and encouraged research in the field of spin caloritronics. Spintronics is about the coupling of charge and spin transport. Spin caloritronics studies the interaction between heat and spin currents. In contrast to spintronics and its variety of applications, a particular spin-caloritronic device has not yet been demonstrated. However, many of the novel phenomena in spin caloritronics can be detected in most spintronic devices. Moreover, thermoelectric effects might have a significant influence on spintronic device operation. This will be of particular interest for this work. Additional knowledge on the principle of coupling between heat and spin currents uncovers an alternative way to control heat dissipation and promises new device functionalities.
This thesis aims to further extend the knowledge on thermoelectrics in materials with strong spin-orbit coupling, in this case the prototypical ferromagnetic semiconductor (Ga,Mn)As. The study is focused on the thermoelectric / thermomagnetic effects at the interface between a normal metal and the ferromagnetic (Ga,Mn)As. In such systems, the different interfaces provide a condition for minimal phonon drag contribution to the thermal effects. This suggests that only band contributions (a diffusion transport regime) to these effects will be measured.
Chapter 2 begins with an introduction on the properties of the studied material system, and basics on thermoelectrics and spin caloritronics. The characteristic anisotropies of the (Ga,Mn)As density of states (DOS) and the corresponding magnetic properties are described. The DOS and magnetic anisotropies have an impact on the transport prop- erties of the material and that results in effects like tunneling anisotropic magnetores- istance (TAMR) [Goul 04]. Some of these effects will be used later as a reference to the results from thermoelectric / thermomagnetic measurements. The Fingerprint tech- nique [Papp 07a] is also described. The method gives an opportunity to easily study the anisotropies of materials in different device geometries.
Chapter 3 continues with the experimental observation of the diffusion thermopower of (Ga,Mn)As / Si-doped GaAs tunnel junction. A device geometry for measuring the diffusion thermopower is proposed. It consists of a Si - doped GaAs heating channel with a Low Temperature (LT) GaAs / (Ga,Mn)As contact (junction) in the middle of the channel. A single Ti / Au contact is fabricated on the top of the junction. For transport characterization, the device is immersed in liquid He. A heating current technique is used to create a temperature difference by local heating of the electron system on the Si:GaAs side. An AC current at low frequency is sent through the channel and it heats the electron population in it, while the junction remains at liquid He temperature (experimentally con- firmed). A temperature difference arises between the heating channel and the (Ga,Mn)As contact. As a result, a thermal (Seebeck) voltage develops across the junction, which we call tunnelling anisotropic magneto thermopower (TAMT), similar to TAMR. TAMT is detected by means of a standard lock-in technique at double the heating current frequency (at 2f ). The Seebeck voltage is found to be linear with the temperature difference. That dependence suggests a diffusion transport regime. Lattice (phonon drag) contribution to the thermovoltage, which is usually highly nonlinear with temperature, is not observed.
The value of the Seebeck coefficient of the junction at 4.2 K is estimated to be 0.5 µV/K.
It is about three orders of magnitude smaller than the previously reported one [Pu 06]. Subsequently, the thermal voltage is studied in external magnetic fields. It is found that the thermopower is anisotropic with the magnetization direction. The anisotropy is explained with the anisotropies of the (Ga,Mn)As contact. Further, switching events are detected in the thermopower when the magnetic field is swept from negative to positive fields. The switchings remind of a spin valve signal and is similar to the results from previous experiments on spin injection using a (Ga,Mn)As contacts in a non-local detection scheme. That shows the importance of the thermoelectric effects and their possible contribution to the spin injection measurements. A polar plot of the collected switching fields for different magnetization angles reveals a biaxial anisotropy and resembles earlier TAMR measurements of (Ga,Mn)As tunnel junction. A simple cartoon model is introduced to describe and estimate the expected thermopower of the studied junction. The model yields a Fermi level inside of the (Ga,Mn)As valence band. Moreover, the model is found to be in good agreement with the experimental results.
The Nernst effect of a (Ga,Mn)As / GaAs tunnel junction is studied in Chapter 4. A modified device geometry is introduced for this purpose. Instead of a single contact on the top of the square junction, four small contacts are fabricated to detect the Nernst signal. A temperature difference is maintained by means of a heating current technique described in Chapter 3. A magnetic field is applied parallel to the device plane. A voltage drop across two opposite contacts is detected at 2f. It appears that a simple cosine function with a parameter the angle between the magnetization and the [100] crystal direction in the (Ga,Mn)As layer manages to describe this signal which is attributed to the anomalous Nernst effect (ANE) of the ferromagnetic contact. Its symmetry is different than the Seebeck effect of the junction. For the temperature range of the thermopower measurements the ANE coefficient has a linear dependence on the temperature difference (∆T). For higher ∆T, a nonlinear dependence is observed for the coefficient. The ANE coefficient is found to be several orders of magnitude smaller than any Nernst coefficient in the literature. Both the temperature difference and the size of the ANE coefficient require further studies and analysis. Switching events are present in the measured Nernst signal when the magnetic field is swept from positive to negative values. These switchings are related to the switching fields in the ferromagnetic (Ga,Mn)As. Usually, there are two states which are present in TAMR or AMR measurements - low and high resistance. Instead of that, the Nernst signal appears to have three states - high, middle and low thermomagnetic voltage. That behaviour is governed not only by the magnetization, but also by the characteristic of the Nernst geometry.
Chapter 5 summarizes the main observations of this thesis and contains ideas for future work and experiments.
Abstimmbare Halbleiterlaser und schmalbandige Laserarrays mit verteilter lateraler Rückkopplung
(2003)
Im Rahmen dieser Arbeit wurden zwei verschiedene Typen von Halbleiterlasern mit verteilter Rückkopplung (DFB-Laser) entwickelt. Die Laser basieren auf Rippenwellenleitern und verfügen zusätzlich über ein dazu senkrecht orientiertes Metallgitter. Der evaneszente Teil der im Rippenwellenleiter geführten Lichtwelle überlappt mit dem Gitter. Durch diese periodische Variation des effektiven Brechungsindex wird die verteilte Rückkopplung gewährleistet, was eine longitudinal monomodige Laseremission zur Folge hat. Beiden Lasertypen ist gemeinsam, dass der Herstellungsprozess auf einem vom Materialsystem unabhängigen Konzept basiert. Diese Tatsache ist von besonderem Interesse, da so entsprechende Laser für unterschiedlichste Wellenlängenbereiche gefertigt werden können, ohne hierfür neue Herstellungsverfahren zu entwickeln. Den ersten Schwerpunkt der Arbeit bilden Untersuchungen zu sog. abstimmbaren Lasern, deren Emissionswellenlänge innerhalb eines relativ großen Bereichs quasikontinuierlich einstellbar ist. Der Abstimmmechanismus kann mit dem Vernier-Prinzip erklärt werden. Der Laser besteht hierbei aus zwei gekoppelten Segmenten, die jeweils über eine Reihe von Moden (Modenkamm) verfügen. Der Abstand der Moden innerhalb eines Segments ist konstant, wohingegen die Modenabstände der beiden Segmente leicht unterschiedlich sind. Die Emissionswellenlänge des Lasers ist bestimmt durch den Überlapp zweier Moden aus den beiden Segmenten, wobei die Modenkämme so ausgelegt sind, dass gleichzeitig maximal ein Modenpaar überlappt. Eine kleine relative Verschiebung der beiden Modenkämme führt zu einer vergleichsweise großen Verschiebung der Emissionswellenlänge auf Grund des veränderten Überlapps. Die Modenkämme wurden durch spezielle DFB-Gitter, sog. binary superimposed gratings (BSG), realisiert, die, anders als bei konventionellen DFB-Lasern, für mehrere Bragg-Wellenlängen konstruktive Interferenz zulassen und erstmalig bei DFB-Lasern eingesetzt wurden. BSGs zeichnen sich durch sehr gute optische Eigenschaften bei gleichzeitig einfacher Herstellung aus. Zum Abstimmen der Wellenlänge wurde der Brechungsindex des Lasers gezielt durch den Injektionsstrom bzw. die Bauteiltemperatur verändert. Im Rahmen dieser Arbeit konnten abstimmbare Laser auf unterschiedlichen Materialsystemen (InGaAs/GaAs, GaInNAs/GaAs, InGaAsP/InP) hergestellt werden. Der maximale diskrete Abstimmbereich beträgt 38 nm bzw. 8,9 THz und ist durch die Breite des Verstärkungsspektrums limitiert. Quasikontinuierlich konnte ein Abstimmbereich von 15 nm bzw. 3,9 THz erreicht werden. Die typische minimale Seitenmodenunterdrückung (SMSR) beträgt 30 bis 35 dB. Durch Hinzufügen eines dritten Segments ohne Gitter konnte die Ausgangsleistung unabhängig von der Wellenlänge konstant gehalten werden. Den zweiten Schwerpunkt der Arbeit bildet die Entwicklung von DFB-Laser-Arrays mit dem Ziel, longitudinal monomodige Laser mit hoher Ausgangsleistung zu erhalten. Die DFB-Laser-Arrays basieren auf dem oben beschriebenen Prinzip von DFB-Lasern mit lateralem Metallgitter und verfügen über mehrere Rippenwellenleiter, die im lateralen Abstand von wenigen Mikrometern angeordnet sind. Für große Abstände zwischen den einzelnen Lasern des Arrays (Elemente) emittieren diese, weitgehend unabhängig von einander, jeweils longitudinal monomodiges Licht (quasimonochromatische Emission). Die spektrale Breite beträgt hierbei typischerweise 50 bis 70 GHz. Für kleine Elementabstände koppeln die einzelnen Lichtwellen miteinander, was zu einer mit einem konventionellen DFB-Laser vergleichbaren Linienbreite führt. Während die ungekoppelten Arrays über ein gaußförmiges Fernfeld verfügen, ergibt sich für die gekoppelten Arrays ein Interferenzmuster, das stark von verschiedenen Laserparametern (wie z. B. dem Elementabstand) abhängt. Bei InGaAs/GaAs basierenden Arrays (Wellenlänge ca. 980 nm) ergibt sich für DFB-Laser-Arrays mit vier Elementen eine Ausgangsleistung von ca. 200 mW pro Facette, die durch die Wärmeabfuhr begrenzt wird. Trotz der starken thermischen Limitierung (die Laser waren nicht aufgebaut) konnte die 3,5-fache Ausgangsleistung eines Referenzlasers erzielt werden. Bei InGaSb/GaSb basierenden Arrays mit vier Elementen (Wellenlänge ca. 2,0 µm) konnte eine Ausgangsleistung von ca. 30 mW pro Facette erreicht werden, was dem 3,3-fachen eines Referenzlasers entspricht. Die Verwendung von DFB-Laser-Arrays führt folglich zu einer signifikanten Leistungssteigerung, die sich durch geeignete Maßnahmen (Facettenvergütung, Montage, Skalierung) noch weiter erhöhen ließe.
In this work, accelerated non-Cartesian Magnetic Resonance Imaging (MRI) methods were established and applied to cardiovascular imaging (CMR) at different magnetic field strengths (3T and 7T).
To enable rapid data acquisition, highly efficient spiral k-space trajectories were created. In addition, hybrid sampling patterns such as the twisting radial lines (TWIRL) k-space trajectory were studied.
Imperfections of the dynamic gradient system of a MR scanner result in k-space sampling errors. Ultimately, these errors can lead to image artifacts in non-Cartesian acquisitions.
Among other reasons such as an increased reconstruction complexity, they cause the lack of spiral sequences in clinical routine compared to standard Cartesian imaging.
Therefore, the Gradient System Transfer Functions (GSTFs) of both scanners were determined and used for k-space trajectory correction in post-correction as well as in terms of a pre-emphasis.
The GSTF pre-emphasis was implemented as a fully automatic procedure, which enabled a precise correction of arbitrary gradient waveforms for double-oblique slice orientations.
Consequently, artifacts due to trajectory errors could be mitigated, which resulted in high image quality in non-Cartesian MRI.
Additionally, the GSTF correction was validated by measuring pre-emphasized spiral gradient outputs, which showed high agreement with the theoretical gradient waveforms.
Furthermore, it could be demonstrated that the performance of the GSTF correction is superior to a simple delay compensation approach.
The developed pulse sequences were applied to gated as well as real-time CMR. Special focus lied on the implementation of a spiral imaging protocol to resolve the beating heart of animals and humans in real time and free breathing.
In order to achieve real-time CMR with high spatiotemporal resolution, k-space undersampling was performed. For this reason, efficient sampling strategies were developed with the aim to facilitate compressed sensing (CS) during image reconstruction.
The applied CS approach successfully removed aliasing artifacts and yielded high-resolution cardiac image series. Image reconstruction was performed offline in all cases such that the images were not available immediately after acquisition at the scanner.
Spiral real-time CMR could be performed in free breathing, which led to an acquisition time of less than 1 minute for a whole short-axis stack.
At 3T, the results were compared to the gold standard of electrocardiogram-gated Cartesian CMR in breath hold, which revealed similar values for important cardiovascular functional and volumetric parameters.
This paves the way to an application of the developed framework in clinical routine of CMR.
In addition, the spiral real-time protocol was transferred to swallowing and speech imaging at 3T, and first images were presented.
The results were of high quality and confirm the straightforward utilization of the spiral sequence in other fields of MRI.
In general, the GSTF correction yielded high-quality images at both field strengths, 3T and 7T.
Off-resonance related blurring was mitigated by applying non-Cartesian readout gradients of short duration. At 7T, however, B1-inhomogeneity led to image artifacts in some cases.
All in all, this work demonstrated great advances in accelerating the MRI process by combining efficient, undersampled non-Cartesian k-space coverage with CS reconstruction.
Trajectory correction using the GSTF can be implemented at any scanner model and enables non-Cartesian imaging with high image quality.
Especially MRI of dynamic processes greatly benefits from the presented rapid imaging approaches.
This thesis consists of two parts of original experimental work, its evaluation, and in- terpretation. Its final goal is to investigate dynamical charge transfer (CT) at a hetero- molecular interface with resonant photoelectron spectroscopy (RPES). In order to achieve this goal preliminary studies have been necessary. First two hetero-molecular inter- faces that exhibit adequate structural properties as well as an appropriate photoelec- tron spectroscopy (PES) spectrum of the valence regime have been identified. The de- sired CT analysis with RPES of these hetero-molecular systems is then conducted on the basis of the knowledge gained by previous RPES studies of homo-molecular sys- tems.
The characterization of hetero-molecular films on single crystal Ag surfaces in the first part of this thesis is performed with high resolution core level PES and valence PES. The reproduction of the core level PES data with reference spectra of homo-molecular films allows me to determine which molecule is in direct contact to the Ag surface and which one is situated in higher layers (not the first one). Due to the direct correspon- dence of core level and valence PES the assignment of features in the spectra of the latter technique can be achieved with the identification of the contributions extracted from the evaluation of the data of the former technique. It is found that the systems PTCDA on one monolayer (ML) of SnPc on Ag(111) and CuPc/1 ML PTCDA/Ag(111) are stable at 300 K which means that no significant layer exchange occurs for these systems. In contrast a vertical exchange of CuPc and PTCDA molecules is observed for PTCDA de- posited on top of 1 ML CuPc/Ag(111). Up to a coverage of approximately 0.5 ML of PTCDA molecules these diffuse into the first layer, replace CuPc molecules, and con- sequently force them into higher layers. Above a coverage of approximately 0.5 ML of PTCDA molecules these are also found in higher layers. The search for a promising system for the intended RPES study then leads to an investigation of hetero-molecular films with a combination of F4TCNQ and PTCDA molecules on Ag(110) within the same approach. Depositing F4TCNQ molecules onto a 1 ML PTCDA/Ag(110) film in the herringbone phase at 300 K results in an instable hetero-organic system which un- dergoes a layer exchange. Hereby PTCDA molecules in the first layer are replaced by F4TCNQ molecules similar to the behavior of the system PTCDA/1 ML CuPc/Ag(111). Switching the order of the preparation steps leads to a stable film of PTCDA/1.0 ML F4TCNQ/Ag(110) at 300 K. Among the stable hetero-molecular films only the system CuPc/1 ML PTCDA/Ag(111) exhibits the required wetting growth of the first two layers at 300 K and a valence PES spectrum with energetically separable molecular orbital signals in the same intensity range. Thus this system is identified to be appropriate for a detailed analysis with RPES.
The unexpected findings of vertical exchanges in the hetero-molecular films at 300 K motivate a study of the behavior at elevated temperatures for all systems investigated before. Therein it is revealed that annealing 1.5 ML SnPc/1 ML PTCDA/Ag(111) and
1.0 ML PTCDA/1 ML SnPc/Ag(111) to a temperature above the desorption temperature of molecules not in direct contact to the Ag(111) surface results in a 1 ML SnPc/Ag(111) film in both cases. Hence at elevated temperatures (approximately above 420 K) SnPc molecules replace PTCDA molecules in the first layer on Ag(111). At higher temper- atures (approximately above 470 K) PTCDA molecules and SnPc molecules situated above the first layer then desorb from the 1 ML SnPc/Ag(111) sample. Annealing all hetero-molecular films with CuPc and PTCDA molecules on Ag(111) to 570 K leads to a sample with CuPc and PTCDA molecules in the first and only layer. Depending on the initial CuPc coverage different ratios of both molecules are obtained. With a CuPc coverage of exactly 1 ML, or above, films with PTCDA coverages of approxi- mately 0.1–0.2 ML are produced. So at elevated temperatures CuPc molecules replace PTCDA molecules in the first layer of the system CuPc/1 ML PTCDA/Ag(111). Anal- ogously the layer exchange at 300 K for the system PTCDA/1 ML CuPc/Ag(111) is reversed at elevated temperatures. In the case of SnPc and CuPc coverages below 1 ML annealing vertical hetero-molecular systems with PTCDA on Ag(111) up to 570 K re- sults in a single layer of mixed hetero-molecular films with lateral long range order. In this way the system CuPc + PTCDA/Ag(111) is prepared and then characterized as a proper system for a detailed analysis with RPES. Additional annealing experiments of hetero-organic films consisting of F4TCNQ and PTCDA molecules on Ag(110) with an F4TCNQ coverage of 1.0 ML (and above) end in a submonolayer (sub-ML) film of F4TCNQ/Ag(110) that exhibits a contribution of amorphous carbon. Consequently, it can be concluded that at elevated temperatures part of the F4TCNQ molecules decom- pose.
In the second part of this thesis homo-molecular multilayer samples and (sub-)ML films on single crystalline metal surfaces are investigated with RPES in order to enable the final RPES study of vertical and lateral hetero-molecular interface systems. First a pho- ton energy (hν) dependent intensity variation of (groups of) molecular orbital signals of exemplary multilayer films (NTCDA and coronene) is studied and explained on the basis of the local character of the electronic transitions in near edge x-ray absorption fine structure (NEXAFS) spectroscopy in combination with the real space probability den- sity of the contributing molecular orbitals. This simple approach is found to be able to correctly describe relative intensity variations by orders of magnitude while it fails for hν dependent relative intensity changes in the same order of magnitude. After that the hν dependent line-shape evolution of an energetically separated molecular orbital signal of a CuPc multilayer is discussed in relation to small molecules in the gas phase and explained with an effect of electron vibration coupling. Through a comparison of the hν dependent line-shape evolution of the highest occupied molecular orbital (HOMO) of a CuPc with a SnPc multilayer the molecule specific character of this effect is identified. Then the same effect with either two (or more) electronic transitions or multiple coupling vibrational modes is observed for a coronene multilayer. Thereafter the influence of the adsorption on metal surfaces on this effect is studied and discussed with special emphasis on a possible contribution by features which are related to dynamical interface CT. For a sub-ML of SnPc/Au(111) no variation with respect to a SnPc multilayer film is detected while for a sub-ML of CuPc/Au(111) less intensity is distributed into the high binding energy (EB) part of the HOMO signal with respect to the corresponding multilayer film. In the RPES data of a sub-ML of coronene/Ag(111) a resonance specific variation of the hν dependent line-shape evolution of the HOMO signal is found by the revelation of a change of this effect with respect to the coronene multilayer data in only one of the two NEXAFS resonances. All these findings are consistently explained within one effect and a common set of parameters, namely all quantities that characterize the potential energy surfaces involved in the RPES process. Through that an alternative explanation that re- lies on dynamical CT can be excluded which influences the following CT analysis with RPES.
Three criteria for such an analysis of dynamical interface CT with RPES are identified. In the system coronene on Ag(111) a low EB feature is related to metal-molecule inter- face CT through the assignment of a particular final state and hence named CT state. In the EB region of the frontier molecular orbital signals of the molecule-metal inter- face systems with a signal from the lowest unoccupied molecular orbital (LUMO) in direct valence PES a broad line-shape is measured in RPES. This finding is related to interface CT by a possible explanation that emerges through the comparison to the line- shape of the CT state. The constant kinetic energy (EK ) features detected for several molecule-metal interfaces constitute the third criterion for a CT analysis with RPES. For the molecule-metal interface systems without a LUMO signal in direct valence PES the energy of these features can be calculated with the assignment of the responsible decay channel in combination with explicitly given simplifying assumptions. Through that the involvement of metal-molecule interface CT in the generation of these constant EK fea- tures is demonstrated. The RPES data of the lateral and the vertical hetero-molecular interface, identified in the first part, is then scanned for these three CT criteria. Thereby neither for the lateral hetero-molecular system CuPc + PTCDA/Ag(111) nor for the verti- cal hetero-molecular system CuPc/1 ML PTCDA/Ag(111) dynamical hetero-molecular interface CT can be confirmed. In the former system the molecule-metal interface in- teraction is found to dominate the physics of the system in RPES while in the latter system no hints for a significant hybridization at the CuPc-PTCDA interface can be revealed
This work deals with the development and application of novel quantum Monte Carlo methods to simulate fermion-boson models. Our developments are based on the path-integral formalism, where the bosonic degrees of freedom are integrated out exactly to obtain a retarded fermionic interaction. We give an overview of three methods that can be used to simulate retarded interactions. In particular, we develop a novel quantum Monte Carlo method with global directed-loop updates that solves the autocorrelation problem of previous approaches and scales linearly with system size. We demonstrate its efficiency for the Peierls transition in the Holstein model and discuss extensions to other fermion-boson models as well as spin-boson models. Furthermore, we show how with the help of generating functionals bosonic observables can be recovered directly from the Monte Carlo configurations. This includes estimators for the boson propagator, the fidelity susceptibility, and the specific heat of the Holstein model. The algorithmic developments of this work allow us to study the specific heat of the spinless Holstein model covering its entire parameter range. Its key features are explained from the single-particle spectral functions of electrons and phonons. In the adiabatic limit, the spectral properties are calculated exactly as a function of temperature using a classical Monte Carlo method and compared to results for the Su-Schrieffer-Heeger model.
The availability of coherent soft x-rays through the nonlinear optical process of high-harmonic generation allows for the monitoring of the fastest events ever observed in the laboratory. The attosecond pulses produced are the fundamental tool for the time-resolved study of electron motion in atoms, molecules, clusters, liquids and solids in the future. However, in order to exploit the full potential of this new tool it is necessary to control the coherent soft x-ray spectra and to enhance the efficiency of conversion from laser light to the soft x-ray region in the harmonic-generation process. This work developed a comprehensive approach towards the optimization of the harmonic generation process. As this process represents a fundamental example of \emph{light}--\emph{matter} interaction there are two ways of controlling it: Shaping the generating laser \emph{light} and designing ideal states of \emph{matter} for the conversion medium. Either of these approaches was closely examined. In addition, going far beyond simply enhancing the conversion process it could be shown that the qualitative spectral response of the process can be modified by shaping the driving laser pulse. This opens the door to a completely new field of research: Optimal quantum control in the attosecond soft x-ray region---the realm of electron dynamics. In the same way as it is possible to control molecular or lattice vibrational dynamics with adaptively shaped femtosecond laser pulses these days, it will now be feasible to perform real-time manipulation of tightly bound electron motion with adaptively shaped attosecond light fields. The last part of this work demonstrated the capability of the herein developed technique of coherent soft-x-ray spectral shaping, where a measured experimental feedback was used to perform a closed-loop optimization of the interaction of shaped soft x-ray light with a sulfur hexafluoride molecule to arrive at different control objectives. For the optimization of the high-harmonic-generation process by engineering the conversion medium, both the gas phase and the liquid phase were explored both in experiment and theory. Molecular media were demonstrated to behave more efficiently than commonly used atomic targets when elliptically polarized driving laser pulses are applied. Theory predicted enhancement of harmonic generation for linearly polarized driving fields when the internuclear distance is increased. Reasons for this are identified as the increased overlap of the returning electron wavefunction due to molecular geometry and the control over the delocalization of the initial electronic state leading to less quantum-mechanical spreading of the electron wavepacket during continuum propagation. A new experimental scheme has been worked out, using the method of molecular wavepacket generation as a tool to enhance the harmonic conversion efficiency in `pump--drive' schemes. The latter was then experimentally implemented in the study of high-harmonic generation from water microdroplets. A transition between the dominant laser--soft-x-ray conversion mechanisms could be observed, identifying plasma-breakdown as the fundamental limit of high-density high-harmonic generation. Harmonics up to the 27th order were observed for optimally laser-prepared water droplets. To control the high-harmonic generation process by the application of shaped laser light fields a laser-pulse shaper based on a deformable membrane mirror was built. Pulse-shape optimization resulted in increased high-harmonic generation efficiency --- but more importantly the qualitative shape of the spectral response could be significantly modified for high-harmonic generation in waveguides. By adaptive optimization employing closed-loop strategies it was possible to selectively generate narrow (single harmonics) and broad bands of harmonic emission. Tunability could be demonstrated both for single harmonic orders and larger regions of several harmonics. Whereas any previous experiment reported to date always produced a plateau of equally intense harmonics, it has been possible to demonstrate ``untypical'' harmonic soft x-ray spectra exhibiting ``switched-off'' harmonic orders. The high degree of controllability paves the way for quantum control experiments in the soft x-ray spectral region. It was also demonstrated that the degree of control over the soft x-ray shape depends on the high-harmonic generation geometry. Experiments performed in the gas jet could not change the relative emission strengths of neighboring harmonic orders. In the waveguide geometry, the relative harmonic yield of neighboring orders could be modified at high contrast ratios. A simulation based solely on the single atom response could not reproduce the experimentally observed contrast ratios, pointing to the importance of propagation (phase matching) effects as a reason for the high degree of controllability observed in capillaries, answering long-standing debates in the field. A prototype experiment was presented demonstrating the versatility of the developed soft x-ray shaping technique for quantum control in this hitherto unexplored wavelength region. Shaped high-harmonic spectra were again used in an adaptive feedback loop experiment to control the gas-phase photodissociation reaction of SF$_6$ molecules. A time-of-flight mass spectrometer was used for the detection of the ionic fragments. The branching ratios of particular fragmentation channels could be varied by optimally shaped soft x-ray light fields. Although in one case only slight changes of the branching ratio were possible, an optimal solution was found, proving the sufficient technical stability of this unique coherent soft-x-ray shaping method for future applications in optimal control. Active shaping of the spectral amplitude in coherent spectral regions of $\sim$10~eV bandwidth was shown to directly correspond to shaping the temporal features of the emerging soft x-ray pulses on sub-femtosecond time scales. This can be understood by the dualism of frequency and time with the Fourier transformation acting as translator. A quantum-mechanical simulation was used to clarify the magnitude of temporal control over the shape of the attosecond pulses produced in the high-harmonic-generation process. In conjunction with the experimental results, the first attosecond time-scale pulse shaper could thus be demonstrated in this work. The availability of femtosecond pulse shapers opened the field of adaptive femtosecond quantum control. The milestone idea of closed-loop feedback control to be implemented experimentally was expressed by Judson and Rabitz in their seminal work titled ``Teaching lasers to control molecules''. This present work extends and turns around this statement. Two fundamentally new achievements can now be added, which are ``Teaching molecules to control laser light conversion'' and ``Teaching lasers to control coherent soft x-ray light''. The original idea thus enabled the leap from femtosecond control of molecular dynamics into the new field of attosecond control of electron motion to be explored in the future. The \emph{closed}-loop approach could really \emph{open} the door towards fascinating new perspectives in science. Coming back to the introduction in order to close the loop, let us reconsider the analogy to the general chemical reaction. Photonic reaction control was presented by designing and engineering effective media (catalysts) and controlling the preparation of educt photons within the shaped laser pulses to selectively produce desired photonic target states in the soft x-ray spectral region. These newly synthesized target states in turn could be shown to be effective in the control of chemical reactions. The next step to be accomplished will be the control of sub-femtosecond time-scale electronic reactions with adaptively controlled coherent soft x-ray photon bunches. To that end a time-of-flight high-energy photoelectron spectrometer has recently been built, which will now allow to directly monitor electronic dynamics in atomic, molecular or solid state systems. Fundamentally new insights and applications of the nonlinear interaction of shaped attosecond soft x-ray pulses with matter can be expected from these experiments.
The subject of this work has been the investigation of dynamical processes that occur during and after the interaction of matter with pulses of femtosecond laser radiation. The experiments presented here were performed in the gas phase and involve one atomic and several model molecular systems. Absorption of femtosecond laser radiation by these systems induces an electronic excitation, and subsequently their ionization, photofragmentation or isomerization. The specific adjustment of the excitation laser field properties offers the possibility to manipulate the induced electronic excitation and to influence the formation of the associated photoproducts. From the perspective of the employed spectroscopic methods, the development of photoelectron spectroscopy and its implementation in laser control experiments has been of particular interest in this thesis. This technique allows for a most direct and intuitive observation of electronic excitation dynamics in atomic as well as in complex polyatomic molecular systems. The propagation of an intermediate electronic transient state, associated to the formation of a particular photoproduct, can be interrogated by means of its correlation to a specific state of the atomic or molecular continuum. Such correlations involve the autoionization of the transient state, or by means of a second probe laser field, a structural correlation, as summarized by the Koopman's theorem (section 2.4.1). The technique of adaptive femtosecond quantum control has been the subject of development in our group for many years. The basic method, by which the temporal profile of near-infrared laser pulses at a central wavelength of 800 nm, can be adjusted, is a programmable femtosecond pulse-shaper that comprises of a zero dispersion compressor and a commercial liquid crystal modulator (LCD). This experimental arrangement was realized prior to this thesis and served as a starting point to extend the pulse-shaping technique to the ultraviolet spectral region. This technological development was realized for the purposes of the experiments presented in Chapter 5. It involves a combination of the LCD-pulse-shaper with frequency up-conversion techniques on the basis of producing specifically modulated laser pulses of central wavelength 266 nm. Furthermore, the optical method X-FROG had to be developed in order to characterize the often complex structure of generated ultraviolet pulses. In the adaptive control experiments presented in this work, the generated femtosecond laser pulses could be automatically adjusted by means of specifically addressing the 128 independent voltage parameters of the programmable liquid-crystal modulator. Additionally a machine learning algorithm was employed for the cause of defining laser pulse-shapes that delivered the desired (optimal) outcome in the investigated laser interaction processes. In Chapter 4, the technique of feedback-controlled femtosecond pulse shaping was combined with time-of-flight mass spectroscopy as well as photoelectron spectroscopy in order to investigate the multiphoton double ionization of atomic calcium. A pronounced absolute enhancement of the double ionization yield was obtained with optimized femtosecond laser pulses. On the basis of the measured photoelectron spectra and of the electron optimization experiments, a non-sequential process was found, which plays an important role in the formation of doubly charged Calcium ions. Then in Chapter 5, the dynamics following the pp* excitation of ethylene-like molecules were investigated. In this context, the model molecule stilbene was studied by means of femtosecond photoelectron spectroscopy. Due to the simplicity of its chemical structure, stilebene is one of the most famous models used in experimental as well as theoretical studies of isomerization dynamics. From the time-resolved experiments described in that chapter, new spectroscopic data involving the second excited electronic state S2 of the molecule were acquired. The second ethylenic product was the molecule tetrakis (dimethylamino) ethylene (TDMAE). Due to the presence of numerous lone pair electrons on the four dimethylamino groups, TDMAE exhibits a much more complex structure than stilbene. Nevertheless, previously reported studies on the dynamics of TDMAE provided vital information for planning and conducting a successful optimisation control experiment of the wavepacket propagation upon the (pp*) S1 excited potential surface of the molecule. Finally, in Chapter 6 the possibility of employing femtosecond laser pulses as an alternative method for activating a metallocene molecular catalyst was addressed. By means of an adaptive laser control scheme, an optimization experiment was realized. There, the target was the selective cleavage of one methyl-ligand of the model catalyst (Cp)^2Zr(CH3)^2, which induces a catalytic coordination position on the molecule. The spectroscopic studies presented in that chapter were performed in collaboration to the company BASF A.G. and constitute a proof-of principle attempt for a commercial application of the adaptive femtosecond quantum control technique.
The generation of high harmonics is an ideal method to convert frequencies of the infrared- or visible range into the soft x-ray range. This process demands high laser intensities that are nowadays supplied by femtosecond laser systems. As the temporal and spatial coherence properties of the laser are transferred during the conversion process, the generated high harmonics will propagate as a beam with high peak-brightness. Under ideal conditions the generation of soft-x-ray pulses shorter than one femtosecond is possible. These properties are exploited in many applications like time-resolved x-ray spectroscopy. The topic of this thesis is the generation and optimization of high harmonics. A variety of conversion setups is investigated (jet of noble gas atoms, gas-filled hollow-fiber, water microdroplets) and theoretical models present ideas to further enhance the conversion efficiency (using excited atoms or aligned molecules). In different setups the peak intensity of the fundamental laser pulses is increased by spectral broadening and subsequent temporal compression. This is achieved with the help of pulse shaping devices that can modify the spectral phase and therefore also the temporal intensity distribution of laser pulses. These pulse shaping devices are controlled by an evolutionary algorithm. With this setup not only adaptive compression of laser pulses is possible, but also the engineering of specific laser pulse shapes to optimize an experimental output. This setup was used to influence the process of high harmonic generation. It is demonstrated that the spectral distribution of the generated soft-x-ray radiation can be controlled by temporal pulse shaping. This method to tailor high harmonics is complemented by spatial shaping techniques. These findings demonstrate the realization of a tunable source of soft-x-ray radiation.
Ziel der vorliegenden Arbeit war es, die Methode der adaptiven Pulsformung von Femtosekunden Laserpulsen in der flüssigen Phase experimentell zu realisieren. Eine Erweiterung dieser Technik auf die kondensierte Phase stellt einen wichtigen Schritt in Richtung einer breiten Anwendbarkeit zur Steuerung von chemischen Reaktionen dar. Die größere Teilchendichte im Vergleich zur Gasphase ermöglicht zum einen eine Erhöhung der erzielbaren absoluten Produktausbeuten. Andererseits ergibt sich erst dadurch die Möglichkeit, reale chemische Reaktionen, wie bimolekulare Reaktionen, gezielt zu steuern, da Stöße zwischen verschiedenen Molekülen wahrscheinlicher werden. Die Methode der adaptiven Quantenkontrolle ist für die Anwendung in der flüssigen Phase bestens geeignet, da sie eine kohärente Kontrolle von photoinduzierten molekularen Prozessen selbst in komplexen Quantensystemen erlaubt. In dieser experimentellen Umsetzung einer ,,geschlossenen Kontrollschleife'' wird die spektrale Phasenstruktur von fs-Laserpulsen in einem computergesteuerten Pulsformer moduliert. Der resultierende geformte Laserpuls wechselwirkt anschließend mit dem zu untersuchenden molekularen System und steuert aktiv die Entwicklung des erzeugten Wellenpakets auf der Potentialenergiefläche. Eine quantitative Messung der erzeugten Photoprodukte dieser Licht-Materie Wechselwirkung dient als Rückkopplungssignal eines selbstlernenden Computeralgorithmus. Der auf dem Prinzip der Evolutionstheorie arbeitende Algorithmus verbessert nun iterativ die Pulsform bis ein Optimum des gewünschten Reaktionskanals erreicht wird. Das modulierte elektrische Feld des Laserpulses passt sich somit entsprechend der gestellten Kontrollaufgabe automatisch den molekularen Eigenschaften an. Um jedoch die Anwendung dieser Technik auch in der kondensierten Phase zu demonstrieren, mussten Methoden zur Gewinnung eines Rückkopplungssignals gefunden werden. Im Rahmen dieser Arbeit wurden daher Möglichkeiten eines quantitativen Rückkopplungssignals für die adaptive Kontrolle in der flüssigen Phase untersucht, wie die Emissionsspektroskopie und die transiente Absorption im UV/VIS oder infraroten Spektralbereich. In einem ersten Experiment wurde die Emissionsspektroskopie verwendet, um einen Ladungstransferprozess (MLCT) in einem Ru(II)-Komplex ([Ru(dpb)3]2+) mit geformten fs-Laserpulsen zu steuern. Um die dominierende Intensitätsabhängigkeit der Anregung zu eliminieren, wurde die Emissionsausbeute mit dem SHG-Signal eines nichtlinearen Kristalls „normiert“. Diese Auslöschung des intensitätsabhängigen Faktors in beiden Prozessen ermöglichte es, Pulsformen zu finden, die dieses Verhältnis sowohl maximieren als auch minimieren. Ein Ansatz zur Erklärung der experimentellen Ergebnisse konnte mit Hilfe eines störungstheoretischen Modells beschrieben werden. In einem zweiten Experiment wurde erstmals eine photochemische Selektivität zwischen zwei verschiedenen Substanzen in der kondensierten Phase demonstriert. Dabei sollte die jeweilige Zwei-Photonen Anregung des Komplexes [Ru(dpb)3]2+ gegenüber dem Molekül DCM selektiv kontrolliert werden. Wiederum diente die spontane Emission beider Substanzen als Rückkopplungssignal für die Effektivität des Anregungsschritts. Verschiedene Ein-Parameter Kontrollmethoden, wie der Variation der Anregungswellenlänge, der Intensität sowie des linearen Chirps, konnten diese Kontrollaufgabe nicht erfüllen. Jedoch konnte eine Optimierung des Verhältnisses der beiden Emissionsausbeuten mit Hilfe der adaptiven Pulsformung erzielt werden. Das Ergebnis dieses Experiments zeigt, dass photoinduzierte Prozesse in zwei unterschiedlichen molekularen Substanzen trotz der Wechselwirkungen der gelösten Moleküle mit ihrer Lösungsmittelumgebung selektiv und simultan kontrolliert werden können. Das Ziel des dritten Experiments war eine gezielte Steuerung einer komplexeren chemischen Reaktion. Mit Hilfe der adaptiven Pulsformung konnte eine optimale Kontrolle der Photoisomerisierungsreaktion des Moleküls NK88 demonstriert werden. Das dazu benötigte Rückkopplungssignal für den evolutionären Algorithmus wird durch transiente Absorptionsspektroskopie im UV/VIS Spektralbereich bereitgestellt. Eine Untersuchung der Dynamik der Isomerisierungsreaktion mit Hilfe der Pump-Probe Technik erlaubte eine Zuordnung zweier verschiedener Absorptionsbereiche zu den jeweiligen Isomeren. Die Ergebnisse der Optimierung des Verhältnisses der Quantenausbeuten der beiden Isomere zeigten, dass die geformten Laserpulse eine Kontrolle der Effizienz der Photoisomerisierung in der flüssigen Phase ermöglichen. Zusammenfassend kann man sagen, dass im Rahmen dieser Arbeit mit Hilfe der fs-Lasertechnologie und der Technik der adaptiven fs-Quantenkontrolle Experimente durchgeführt wurden, die einen wichtigen Beitrag zu dem neuen Forschungsbereich der Femtochemie darstellen. Die Erweiterung dieser Technik auf die flüssige Phase beschreibt einen ersten Erfolg in Richtung einer neuartigen Chemie.
Die Bildung verschiedener Isomere durch Änderung der molekularen Struktur spielt eine wichtige Rolle in vielen Gebieten der Physik, Chemie und Biologie. Die Kontrolle dieser Reaktionen ist daher eine sehr interessante Herausforderung und von großer Bedeutung für viele verschiedene Bereiche. Die Entwicklung der letzten Jahre hat gezeigt, dass adaptive Femtosekunden Quantenkontrolle eine ausgesprochen geeignete Methode ist, um chemische Reaktionen zu kontrollieren. Die vorliegende Arbeit behandelt die Beobachtung und Kontrolle von solchen Isomerisierungsreaktionen in biologisch und chemisch relevanten Systemen. Dazu wurde die Reaktionsdynamik eines in Methanol gelösten Modellmoleküls mittlerer Größe mittels transienter Absorption, Fluorescence Upconversion und Anisotropie Spektroskopie untersucht. In Kooperation mit F. Santoro und R. Improta konnte eine detaillierte Beschreibung der ablaufenden Prozesse gefunden werden. In Übereinstimmung mit den von ihnen durchgeführten quantenmechanischen Simulationen hat sich herausgestellt, dass sich die Dynamik auf der ersten angeregten Potentialfläche nach der Anregung auf zwei Zeitskalen abspielt. Nach dem Passieren einer konische Durchschneidung isomerisiert das Molekül entweder zum thermodynamisch stabileren trans Isomer oder zu den instabileren Produktisomeren. An diesem System wurden nun adaptive Femtosekunden Quantenkontrollexperimente durchgeführt, mit dem Ziel den Isomerisierungsprozess zu beeinflussen. Es konnte erfolgreich gezeigt werden, dass die Isomerisierungseffizienz (die relative Menge von Edukt- zu Produktisomeren) sowohl erhöht als auch verringert werden kann. Einzel-Parameter Kontrollmechanismen wie zum Beispiel das Verwenden verschieden gechirpter Anregeimpulse oder unterschiedlicher Anregeimpulsenergien ergaben einen nur geringen Einfluss auf die Isomerisierungseffizienz. Diese Kontrollstudien über den Isomerisierungsprozess haben weiterführende Experimente an dem sehr komplexen biologischen System Retinal innerhalb des Proteins Bakteriorhodopsin motiviert. Die traditionelle Anrege-Abrege-Abfrage Technik wurde zu einem neuen Anrege-geformten-Abrege-Abfrage Konzept erweitert. Dadurch können molekulare Systeme in den Regionen der Potentialenergie-Landschaft kontrolliert werden, in denen der entscheidende Reaktionsschritt stattfinded. Verschiedene theoretische Berechnungen zum Problem der Erhöhung der Isomerisierungseffizienz stellen in Aussicht, dass Anrege-Abrege-Wiederanrege-Abfrage Mechanismen eine Möglichkeit der effektiven Beeinflussung der Reaktionsdynamik eröffnen. Mit der weiterentwickelten Methode können solche Vier-Puls-Techniken realisiert und ihr Einfluss auf den Reaktionsprozess systematisch untersucht werden. Zusätzlich wurde mittels Variation von parametrisierten spektralen Phasenfunktionen, wie verschiedene Ordnungen Chirp, die Dynamik des Abregungsprozesses beleuchtet. Durch Formen des Abregungsimpulses mittels adaptiver Femtosekunden Quantenkontrolle wurden die Informationen aus den systematische Untersuchung vervollständigt. Häufig sind die aus einem adaptiven Femtosekunden Quantenkontrollexperiment erhaltenen optimalen Laserimpulsformen sehr kompliziert. Besonders Anrege-Abrege Szenarien spielen oft eine wichtige Rolle in den ermittelten optimalen Lösungen und sollten daher gesondert untersucht werden. Dazu können verschiedenfarbige Doppelimpulse verwendet werden, bei denen man sowohl den Pulsabstand als auch die relative Amplitude oder die Phasendifferenz der beiden Einzellpulse systematisch ändert. Diese weiterentwickelte Methode wurde mittels einfacher Experimente charakterisiert. In einem weiteren Schritt wurde ein Aufbau entworfen, der Doppelimpulse erfordert, um ein maximale Ausbeute von Licht bei einer Wellenlänge von 266~nm zu erhalten. Mit dem Kontrollziel der maximalen dritten Harmonischen Ausbeute wurden adaptive Femtosekunden Quantenkontrollexperimente durchgeführt. Durch zusätzliche Messungen von verschiedenfarbigen Doppelimpuls-Kontrolllandschaften konnte die optimale Pulsform ermittelt und bestätigt werden. In einem abschließenden Experiment wurde die Abhängigkeit der Anregeeffizienz eines komplexen, in Methanol gelösten Farbstoffmoleküls auf verschiedene Impulsformen untersucht. Aus den Ergebnissen wird ersichtlich, dass sehr unterschiedliche Impulsformen ein Kontrollziel ähnlich gut erfüllen können. Verschiedenfarbige Doppelimpuls-Kontrolllandschaften können einen Einblick in Kontrollmechanismen von adaptiv gefundenen Impulsformen ermöglichen und Informationen über die Reaktionsdynamik liefern. Mittels der angewandten und weiterentwickelten Methoden mehr über verschiedene Prozesse unterschiedlicher Molekülklassen zu lernen ist ein viel versprechendes und realistisches Ziel für die Zukunft. Die präsentierten Experimente zeigen, dass es möglich ist, geometrische Änderungsreaktionen in chemisch und biologisch relevanten Systemen durch adaptive Femtosekunden Quantenkontrolle zu steuern.
Adaptive Polarization Pulse Shaping and Modeling of Light-Matter Interactions with Neural Networks
(2007)
The technique of ultrafast polarization shaping is applied to a model quantum system, the potassium dimer. The polarization dependence of the multiphoton ionization dynamics in this molecule is first investigated in pump–probe experiments, and it is then more generally addressed and exploited in an adaptive quantum control experiment utilizing near–IR polarization–shaped laser pulses. The extension of these polarization shaping techniques to the UV spectral range is presented, and methods for the generation and characterization of polarization–shaped laser pulses in the UV are introduced. Systematic scans of double–pulse sequences are introduced for the investigation and interpretation of control mechanisms. This concept is first introduced and illustrated for an optical demonstration experiment, and it is then applied for the analysis of the intrapulse dumping mechanism that is observed in the excitation of a large dye molecule in solution with ultrashort laser pulses. Shaped laser pulses are employed as a means for obtaining copious amounts of data on light–matter interactions. Neural networks are introduced as a novel tool for generating computer–based models for these interactions from the accumulated data. The viability of this approach is first tested for second harmonic generation (SHG) and molecular fluorescence processes. Neural networks are then utilized for modeling the far more complex coherent strong–field dynamics of potassium atoms.
Im Rahmen der vorliegenden Dissertation werden mit unterschiedlichen Analysemethoden die Korrelationen zwischen den strukturellen, elektronischen und magnetischen Eigenschaften von Selten Erd-basierten intermetallischen Oberflächenlegierungen anhand der beiden Probensysteme LaPt$_5$/Pt(111) und CePt$_5$/Pt(111) untersucht. Darüber hinaus werden die strukturellen Eigenschaften von Adsorbat-induzierten Oberflächenrekonstruktionen im sub-ML Bereich in reduzierten Dimensionen auf der Halbleiteroberfläche Si(111) anhand der beiden Materialsysteme Si(111)-(5$\times$2)-Au und Si(111)-($\sqrt{3}\times\sqrt{3}$)R30${\degree}$-Sn mit der Methode LEED-IV analysiert.
Das erste experimentelle Kapitel dieser Arbeit behandelt die intermetallische Oberflächenlegierung LaPt$_5$/Pt(111), die sich ausbildet wenn La-Atome auf einem sauberen Pt(111)-Substrat abgeschieden werden und anschließend thermische Energie hinzugefügt wird. Die Dicke der gebildeten Legierung lässt sich über die zuvor angebotene Menge an La-Atomen variieren und resultiert aufgrund der Gitterfehlanpassung von Pt(111) und den obenauf liegenden LaPt$_5$-Filmen in sechs unterschiedliche Beugungsmuster im LEED, deren Überstrukturvektoren durch zwei unterschiedliche Rotationsausrichtungen in Bezug auf das Gitter des Substrats und unterschiedlichen lateralen Gitterkonstanten der Filme gekennzeichnet sind. Die atomare Struktur kann auf eine gemeinsame Kristallstruktur zurückgeführt werden, deren Stöchiometrie aus dickenabhängigen AES-Messungen zu LaPt$_5$ mit einer Pt-reichen Oberflächenabschlusslage bestimmt werden konnte. Die Ergebnisse einer durchgeführten LEED-IV Studie bestätigen das Wachstum der Filme in der CaCu$_5$-Struktur, wobei die Oberflächenterminierungslage im Vergleich zum Volumengitter ein zusätzliches Pt-Atom pro Einheitszelle aufweist, das zusätzlich um einen Wert von \unit{0.26}{\angstrom} aus der Oberfläche hervorsteht. Die La-Atome, die direkt unterhalb der Terminierungslage liegen, erfahren eine Verschiebung in entgegengesetzter Richtung, so dass im Vergleich zum Volumen der Filme eine lokal veränderte Symmetrie im oberflächennahen Bereich vorherrscht und sich auf die elektronischen Eigenschaften der LaPt$_5$-Filme auswirkt. Darüber hinaus wurden die Schwingungseigenschaften der LaPt$_5$-Filme mittels der polarisierten in situ Raman-Spektroskopie bestimmt, bei der die auftretenden Schwingungspeaks durch die Kenntnis der atomaren Struktur und mit Überlegungen aus der Gruppentheorie unterschiedlichen Tiefenbereichen der LaPt$_5$-Filme (Volumen und Oberfläche) zugewiesen werden konnten.
Im zweiten experimentellen Kapitel liegt der Fokus auf der atomaren Struktur sowie auf den elektronischen und magnetischen Eigenschaften des Kondo- und Schwerfermionensystems CePt$_5$/Pt(111). In Abhängigkeit von der vor dem Legierungsprozess angebotenen Menge an Ce-Atomen auf dem Pt(111)-Substrat konnten insgesamt sieben verschiedene LEED-Phasen der CePt$_5$-Filme identifiziert werden, deren jeweilige Oberflächenrekonstruktionen durch eine unterschiedliche Rotationsausrichtung in Bezug auf das Pt(111)-Substrat gekennzeichnet sind. Zusätzlich ist die laterale Gitterkonstante einem Prozess aus Verspannung und Dehnung aufgrund der Gitterfehlanpassung von Film und Substrat ausgesetzt. Eine durchgeführte LEED-IV Analyse bestätigt das Wachstum der Filme in der CaCu$_5$-Struktur mit einer Pt-reichen Oberflächenabschlusslage, deren Pt$_3$-Kagom\'{e}-Lage im Vergleich zum Volumengitter mit einem zusätzlichen Pt-Atom pro Einheitszelle gefüllt ist. Die strukturellen Ergebnisse stimmen mit erzielten Resultaten aus früheren Arbeiten überein und verdeutlichen zudem die isostrukturellen Eigenschaften zur intermetallischen Oberflächenlegierung LaPt$_5$/Pt(111). Dies ermöglicht durch geeignete Vergleichsexperimente an LaPt$_5$/Pt(111) die induzierten Phänomene der $4f$-Elektronen bezüglich des Kondo- und Schwerfermionenverhaltens bei CePt$_5$/Pt(111) zu bestimmen, da La-Atome in ihrem atomaren Aufbau keine $4f$-Elektronen beherbergen. Mit der polarisierten in situ Raman-Spektroskopie aufgenommene Spektren anhand von unterschiedlich dicken CePt$_5$-Filmen beinhalten sowohl charakteristische Schwingungspeaks als auch elektronische Übergänge. Das spektroskopische Verhalten der Schwingungspeaks zeigt dabei nicht nur Gemeinsamkeiten zu LaPt$_5$/Pt(111) bei der Zuweisung der Schwingungsmoden zu den jeweiligen Tiefenbereichen in den CePt$_5$-Filmen, sondern es treten auch Unterschiede auf, da eine CePt$_5$-Schwingungsmode einem anormalen Temperaturverhalten unterliegt, das auf die Wechselwirkung mit den $4f$-Elektronen zurückzuführen ist. Weitere spezifische Raman-Signaturen, die elektronischen Übergängen in Form von Kristallfeldniveauaufspaltungen der $4f$-Elektronen von Ce zugewiesen werden konnten, resultieren ebenfalls aus unterschiedlichen Regionen der CePt$_5$-Filme (Oberfläche, inneres Volumen, Interface). Die magnetischen Eigenschaften der CePt$_5$-Filme wurden mit XAS und XMCD an den Ce M$_{4,5}$-Kanten in Abhängigkeit von der Temperatur, dem Einfallswinkel, der Filmdicke und der Stärke des Magnetfelds analysiert. Die markanten Übergänge zwischen unterschiedlichen Curie-Weiss-Regimen in der inversen Suszeptibilität erlauben Rückschlüsse über das Kristallfeldaufspaltungsschema, die Kondo- und die RKKY-Wechselwirkung und korrelieren mit der Ce-Valenz. Zudem konnte bei tiefen Temperaturen ein Übergang in den kohärenten Schwerfermionen-Zustand für alle untersuchten CePt$_5$-Filmdicken in dieser Arbeit nachgewiesen werden. Durch die Vorhersage eines metamagnetischen Lifshitz-Übergangs für diese Filme, der sich in der Magnetfeldabhängigkeit des magnetischen Moments äußert, konnte durch die Aufnahme von Magnetisierungskurven bei tiefen Temperaturen und hohen Magnetfeldern auf zwei weitere charakteristische Energieskalen der renormalisierten Bandstruktur zugegriffen werden.
Das dritte experimentelle Kapitel widmet sich der mit LEED und LEED-IV durchgeführten Aufklärung der atomaren Struktur eines quasi-eindimensionalen Elektronensystems, bei dem sich die gebildeten Au-Nanodrähte auf der Si(111)-Oberfläche durch eine Si(111)-(5$\times$2)-Au Rekonstruktion beschreiben lassen. Die aufgenommenen LEED-Bilder mit ihren markanten Beugungsreflexen und sogenannten Streifen deuten auf drei gleichwertige Rotationsdomänen, die jeweils um einen Winkel von \unit{120}{\degree} gegeneinander gedreht sind, auf der Oberfläche hin. Zudem konnte aus einer Simulation der Beugungsbilder das Auftreten von Streifen durch drei zusätzliche Spiegeldomänen, die eine Phasenverschiebung von einem halben Überstrukturvektor einführen und bei einer sorgfältigen LEED-IV Analyse ebenfalls berücksichtigt werden sollten, erklärt werden. Aus den in der Literatur nach einer zweiten Rekalibrierung der nötigen Menge an Au-Atomen zur Ausbildung der Si(111)-(5$\times$2)-Au Rekonstruktion in den letzten Jahren heftig diskutierten Strukturmodellen gibt das von Kwon und Kang aufgestellte Geometriemodell (KK-Modell) die beobachteten energieabhängigen Intensitätsmodulationen in den experimentellen Daten beim Vergleich mit theoretisch berechneten IV-Kurven am besten wieder. Für dieses Modell nimmt der R-Faktor nach Pendry bei den unabhängig voneinander betrachteten drei Energieserien unter verschiedenen Einfallswinkeln der Elektronen auf die Probenoberfläche stets den kleinsten Wert an. Unter der expliziten Berücksichtigung von Si-Adatomen, die sich zusätzlich auf der Oberfläche befinden und in einer (5$\times$4)-Einheitszelle beschrieben werden können, bleibt das KK-Modell das zu präferierende Strukturmodell zur Beschreibung der ausgebildeten Au-Ketten und der Si-Honigwabenstruktur bei der Si(111)-(5$\times$2)-Au Oberflächenrekonstruktion.
Im letzten experimentellen Kapitel wird ein zweidimensionales Elektronensystem -- die $\alpha$-Si(111)-($\sqrt{3}\times\sqrt{3}$)R30${\degree}$-Sn Oberflächenrekonstruktion, die sich bei 1/3 ML an Sn-Adsorbaten auf dem Si(111)-Substrat ausbildet -- im Hinblick auf die atomare Struktur bei Raumtemperatur mit LEED und LEED-IV untersucht. Aus den insgesamt sechs in die Analyse aufgenommenen Strukturmodellen, bei denen die Sn-Atome innerhalb der rekonstruierten ($\sqrt{3}\times\sqrt{3}$)R30${\degree}$-Einheitszelle unterschiedliche Adsorptionsplätze auf einer ideal terminierten Si(111)-Oberfläche einnehmen, konnte ein Legierungsverhalten, wie es bei der $\gamma$-Si(111)-($\sqrt{3}\times\sqrt{3}$)R30${\degree}$-Sn Phase auftritt, ausgeschlossen werden. Die Sn-Atome ordnen sich ausschließlich auf der Oberfläche neu an und führen zu einer Relaxation des darunterliegenden Substrats, deren atomare Verschiebungen sich bis in die sechste Si-Lage nachverfolgen lassen. Im Vergleich zu früheren Strukturaufklärungen an diesem Materialsystem bestätigt diese Analyse, dass sich die abgeschiedenen Sn-Atome auf T$_4$-Adsorptionsplätzen energetisch günstig anlagern, wobei die bei drei unterschiedlichen Einfallswinkeln aufgenommenen experimentellen Daten an unterschiedlichen Probenpositionen auf ein vorhandenes bzw. fehlendes Si-Atom auf einem S$_5$-Gitterplatz im darunterliegenden Si(111)-Substrat hindeuten. Außerdem konnte das theoretisch vorhergesagte dynamische Fluktuations-Modell aufgrund der sehr stark erhöhten thermischen Auslenkungen der Sn-Atome aus ihrer Gleichgewichtslage in den Modellrechnungen zur dynamischen Streutheorie nachgewiesen werden. Dies könnte neben den unregelmäßig angeordneten Si-Fehlstellen eine Ursache für das Ausbleiben des strukturell reversiblen Phasenübergangs von einer ($\sqrt{3}\times\sqrt{3}$)R30${\degree}$-Phase zu einer (3$\times$3)-Phase bei tiefen Temperaturen, wie er beispielsweise beim elektronisch vergleichbaren Adsorbatsystem Ge(111)-($\sqrt{3}\times\sqrt{3}$)R30${\degree}$-Sn auftritt, sein.
Die vorliegende Arbeit beschäftigt sich mit den strukturellen Aspekten einer adsorbat-induzierten Facettierung von vizinalen Ag(111)-Oberflächen. Bei dem Adsorbat handelte es sich um das organische Molekül Perylen-3,4,9,10-Tetracarbonsäure-Dianhydrid (PTCDA). Die Experimente wurden unter Ultrahochvakuum-Bedingungen durchgeführt, die Charakterisierung erfolgte hauptsächlich mit den Messmethoden Rastertunnelmikroskopie (STM) und niederenergetische Elektronenbeugung (LEED). Das planare Farbstoffmolekül PTCDA adsorbiert präferentiell an den Stufenkanten der verwendeten 8.5° Ag(111)-Vizinaloberflächen und induziert bei geeigneten Präparationsbedingungen eine Rekonstruktion in stark gestufte Facettenflächen und in stufenfreie (111)-Terrassen. Die beobachteten Facetten sind für das System PTCDA/Ag charakteristisch und stellen durch eine molekulare Überstruktur richtungsselektiv stabilisierte Ag-Kristallebenen dar. Durch die Variation der Stufenrichtung der Startoberfläche wurde eine Vielzahl von Facettentypen erhalten und nach Miller indiziert. In ihrer Gesamtheit erlauben sie einen Rückschluss auf das Aussehen der Gleichgewichtskristallform eines mit PTCDA bedeckten Ag-Kristalles und damit auf das richtungsabhängige Benetzungsverhalten von Ag. Aus der Sicht des Substrates bewirkt das Adsorbat eine massive Erhöhung der Steifheit der Stufen. Die durch eine molekulare Überstruktur stabilisierten Facettenflächen übernehmen die in der Kristallstruktur des Substrates angelegten Stufenrichtungen. Die gefundene Ausbildung von zwei typischen Facettensteigungen ist jedoch nicht durch die Ag-Kristallstruktur motivierbar. Die Facettierung wurde im Rahmen einer speziellen Adaption des Konzepts der Thermodynamik auf ebene gestufte Oberflächen als Orientierungsphasenseparation beschrieben. Dieses Konzept erlaubt eine korrekte Beschreibung der beobachteten lokalen Phänomene und zeigt zudem auf, dass das molekulare Gas, welches in den Messungen nicht erfasst wurde, eine wichtige Rolle bei der Rekonstruktion spielt. Es ergaben sich wichtige Indizien für die Existenz einer kritischen Inselgröße für PTCDA auf Ag(111). Es wurde eine vollständige strukturelle Analyse aller stabilen molekularen Überstrukturen auf vizinalen Ag(111)-Oberflächen durchgeführt. Es wurden insgesamt 16 solcher Überstrukturen gefunden, von denen bisher nur 3 Strukturen bekannt und veröffentlicht waren. Dichte und Kommensurabilität der Facettenüberstrukturen sind systematisch vom Stufentyp der Oberfläche abhängig. Die Frage nach dem Ursprung der beiden charakteristischen Facettensteigungen ist mit der Existenz von zwei Typen von Überstrukturgrenzen verknüpft. Die Grenze bestimmt die Lage der fischgrätartigen Überstruktur zu den Stufenkanten und die Länge und die Breite des Moleküls die beiden charakteristischen Stufenabstände. Letzteres geschieht vermöge einer lokalen Wechselwirkung der PTCDA-Moleküle mit den Stufen. Die Überstrukturgrenzen erweisen sich als wichtiges Element der Rekonstruktion. Es wurden außerdem die Abhängigkeiten der verschiedenen, aneinander angrenzenden Überstrukturen aufgezeigt. Auf den (111)-Terrassen fanden sich 3 metastabile Ausnahme-Strukturen, welche einen vertieften Einblick in die komplexe Bildungskinetik der bisher bekannten stabilen (111)-Struktur erlauben. Die Facetten bilden zusammen mit den benachbarten (111)-Terrassen regelmäßige, einem Reflexionsgitter ähnliche Muster mit einer Strukturweite von 5 bis 75nm. Die beobachteten Strukturweiten erreichen bei ausgedehntem Tempern typische Maximalwerte. STM-Messungen zeigen den Einfluss einer langreichweitigen Wechselwirkung zwischen den Facetten, vermittelt über elastische Eigenschaften des Substrates. Die Muster können als selbstorganisierte Zweiphasensysteme im thermodynamischen Gleichgewicht erklärt werden. Die Facetten wirken wie repulsiv wechselwirkende Defekte in einem elastischen Medium. Die Eignung dieser Muster als Templat wurde in Kooperation mit einer anderen Arbeitsgruppe am Beispiel der selektiven Deposition von Eisen belegt.
In dieser Arbeit wurden methodenübergreifend die Adsorbatsysteme CuPc/Ag(111), CuPc/Au(111), CuPc/Cu(111), H2Pc/Ag(111) und TiOPc/Ag(111) untersucht und detailliert charakterisiert. Der Schwerpunkt der Experimente lag in der Bestimmung der lateralen geometrischen Strukturen mit hochauflösender Elektronenbeugung (SPA-LEED) und Rastertunnelmikroskopie (STM), sowie der Adsorptionshöhen mit der Methode der stehenden Röntgenwellenfeldern (NIXSW). Hochauflösende Elektronenenergieverlustspektroskopie (HREELS) wurde verwendet, um die vibronische Struktur und den dynamischen Ladungstransfer an der Grenzfläche zu charakterisieren. Die elektronische Struktur und der Ladungstransfer in die Moleküle wurde mit ultraviolett Photoelektronenspektroskopie (UPS) gemessen. Die wichtigsten Ergebnisse dieser Arbeit betreffen den Zusammenhang zwischen Adsorbat-Substrat Wechselwirkung und der Adsorbat-Adsorbat Wechselwirkung von Phthalocyaninen im Submonolagenbereich.
The goal of this work is to improve the understanding of adsorption-induced deformation in nanoporous (and in particular microporous) materials in order to explore its potential for material characterization and provide guidelines for related technical applications such as adsorption-driven actuation. For this purpose this work combines in-situ dilatometry measurements with in-depth modeling of the obtained adsorption-induced strains. A major advantage with respect to previous studies is the combination of the dilatometric setup and a commercial sorption instrument resulting in high quality adsorption and strain isotherms. The considered model materials are (activated and thermally annealed) carbon xerogels, a sintered silica aerogel, a sintered hierarchical structured porous silica and binderless zeolites of type LTA and FAU; this selection covers micro-, meso- and macroporous as well as ordered and disordered model materials.
All sample materials were characterized by scanning electron microscopy, gas adsorption and sound velocity measurements. In-situ dilatometry measurements on mesoporous model materials were performed for the adsorption of N2 at 77 K, while microporous model materials were also investigated for CO2 adsorption at 273 K, Ar adsorption at 77 K and H2O adsorption at 298 K. Within this work the available in-situ dilatometry setup was revised to improve resolution and reproducibility of measurements of small strains at low relative pressures, which are of particular relevance for microporous materials.
The obtained experimental adsorption and strain isotherms of the hierarchical structured porous silica and a micro-macroporous carbon xerogel were quantitatively analyzed based on the adsorption stress model; this approach, originally proposed by Ravikovitch and Neimark, was extended for anisotropic pore geometries within this work. While the adsorption in silica mesopores could be well described by the classical and analytical theory of Derjaguin, Broekhoff and de Boer, the adsorption in carbon micropores required for comprehensive nonlocal density functional theory calculations. To connect adsorption-induced stresses and strains, furthermore mechanical models for the respective model materials were derived. The resulting theoretical framework of adsorption, adsorption stress and mechanical model was applied to the experimental data yielding structural and mechanical information about the model materials investigated, i.e., pore size or pore size distribution, respectively, and mechanical moduli of the porous matrix and the nonporous solid skeleton. The derived structural and mechanical properties of the model materials were found to be consistent with independent measurements and/or literature values. Noteworthy, the proposed extension of the adsorption stress model proved to be crucial for the correct description of the experimental data.
Furthermore, it could be shown that the adsorption-induced deformation of disordered mesoporous aero-/xerogel structures follows qualitatively the same mechanisms obtained for the ordered hierarchical structured porous silica. However, respective quantitative modeling proved to be challenging due to the ill-shaped pore geometry of aero-/xerogels; good agreement between model and experiment could only be achieved for the filled pore regime of the adsorption isotherm and the relative pressure range of monolayer formation. In the intermediate regime of multilayer formation a more complex model than the one proposed here is required to correctly describe stress related to the curved adsorbate-adsorptive interface. Notably, for micro-mesoporous carbon xerogels it could be shown that micro- and mesopore related strain mechanisms superimpose one another.
The strain isotherms of the zeolites were only qualitatively evaluated. The result for the FAU type zeolite is in good agreement with other experiments reported in literature and the theoretical understanding derived from the adsorption stress model. On the contrary, the strain isotherm of the LTA type zeolite is rather exceptional as it shows monotonic expansion over the whole relative pressure range. Qualitatively this type of strain isotherm can also be explained by the adsorption stress model, but a respective quantitative analysis is beyond the scope of this work.
In summary, the analysis of the model materials' adsorption-induced strains proved to be a suitable tool to obtain information on their structural and mechanical properties including the stiffness of the nonporous solid skeleton. Investigations on the carbon xerogels modified by activation and thermal annealing revealed that adsorption-induced deformation is particularly suited to analyze even small changes of carbon micropore structures.
Magnetic Resonance Imaging (MRI) is a non-invasive medical imaging technique, that is rou- tinely used in clinical practice for detection and diagnosis of a wide range of different diseases. In MRI, no ionizing radiation is used, making even repeated application unproblematic. This is an important advantage over other common imaging methods such as X-rays and Computer To- mography. One major drawback of MRI, however, are long acquisition times and associated high costs of experiments. Since the introduction of MRI, several important technical developments have been made to successfully reduce acquisition times. In this work, novel approaches were developed to increase the efficiency of MRI acquisitions.
In Chapter 4, an improved radial turbo spin-echo (TSE) combined acquisition and reconstruction strategy was introduced. Cartesian turbo spin-echo sequences [3] are widely used especially for the detection and diagnosis of neurological pathologies, as they provide high SNR images with both clinically important proton density and T2 contrasts. TSE acquisitions combined with radial sampling are very efficient, since it is possible to obtain a number of ETL images with different contrasts from a single radial TSE measurement [56–58]. Conventionally, images with a particular contrast are obtained from both radial and Cartesian TSE acquisitions by combining data from different echo times into a single image. In the radial case, this can be achieved by employing k-space weighted image contrast (KWIC) reconstruction. In KWIC, the center region of k-space is filled exclusively with data belonging to the desired contrast while outer regions also are assembled with data acquired at other echo times. However, this data sharing leads to mixed contrast contributions to both Cartesian and radial TSE images. This is true especially for proton density weighted images and therefore may reduce their diagnostic value.
In the proposed method, an adapted golden angle reordering scheme is introduced for radial TSE acquisitions, that allows a free choice of the echo train length and provides high flexibility in image reconstruction. Unwanted contrast contaminations are greatly reduced by employing a narrow-band KWIC filter, that restricts data sharing to a small temporal window around the de- sired echo time. This corresponds to using fewer data than required for fully sampled images and consequently leads to images exhibiting aliasing artifacts. In a second step, aliasing-free images are obtained using parallel imaging. In the neurological examples presented, the CG-SENSE algorithm [42] was chosen due to its stable convergence properties and its ability to reconstruct arbitrarily sampled data. In simulations as well as in different in vivo neurological applications, no unwanted contrast contributions could be observed in radial TSE images reconstructed with the proposed method. Since this novel approach is easy to implement on today’s scanners and requires low computational power, it might be valuable for the clinical breakthrough of radial TSE acquisitions.
In Chapter 5, an auto-calibrating method was introduced to correct for stimulated echo contribu- tions to T2 estimates from a mono-exponential fit of multi spin-echo (MSE) data. Quantification of T2 is a useful tool in clinical routine for the detection and diagnosis of diseases as well as for tis- sue characterization. Due to technical imperfections, refocusing flip angles in a MSE acquisition deviate from the ideal value of 180○. This gives rise to significant stimulated echo contributions to the overall signal evolution. Therefore, T2 estimates obtained from MSE acquisitions typically are notably higher than the reference. To obtain accurate T2 estimates from MSE acquisitions, MSE signal amplitudes can be predicted using the extended phase graph (EPG, [23, 24]) algo- rithm. Subsequently, a correction factor can be obtained from the simulated EPG T2 value and applied to the MSE T2 estimates. However, EPG calculations require knowledge about refocus- ing pulse amplitudes, T2 and T1 values and the temporal spacing of subsequent echoes. While the echo spacing is known and, as shown in simulations, an approximate T1 value can be assumed for high ratios of T1/T2 without compromising accuracy of the results, the remaining two parameters are estimated from the data themselves. An estimate for the refocusing flip angle can be obtained from the signal intensity ratio of the second to the first echo using EPG. A conventional mono- exponential fit of the MSE data yields a first estimate for T2. The T2 correction is then obtained iteratively by updating the T2 value used for EPG calculations in each step. For all examples pre- sented, two iterations proved to be sufficient for convergence. In the proposed method, a mean flip angle is extracted across the slice. As shown in simulations, this assumption leads to greatly reduced deviations even for more inhomogeneous slice profiles. The accuracy of corrected T2 values was shown in experiments using a phantom consisting of bottles filled with liquids with a wide range of different T2 values. While T2 MSE estimates were shown to deviate significantly from the spin-echo reference values, this is not the case for corrected T2 values. Furthermore, applicability was demonstrated for in vivo neurological experiments.
In Chapter 6, a new auto-calibrating parallel imaging method called iterative GROG was pre- sented for the reconstruction of non-Cartesian data. A wide range of different non-Cartesian schemes have been proposed for data acquisition in MRI, that present various advantages over conventional Cartesian sampling such as faster acquisitions, improved dynamic imaging and in- trinsic motion correction. However, one drawback of non-Cartesian data is the more complicated reconstruction, which is ever more problematic for non-Cartesian parallel imaging techniques. Iterative GROG uses Calibrationless Parallel Imaging by Structured Low-Rank Matrix Completion (CPI) for data reconstruction. Since CPI requires points on a Cartesian grid, it cannot be used to directly reconstruct non-Cartesian data. Instead, Grappa Operator Gridding (GROG) is employed in a first step to move the non-Cartesian points to the nearest Cartesian grid locations. However, GROG requires a fully sampled center region of k-space for calibration. Combining both methods in an iterative scheme, accurate GROG weights can be obtained even from highly undersampled non-Cartesian data. Subsequently, CPI can be used to reconstruct either full k- space or a calibration area of arbitrary size, which can then be employed for data reconstruction with conventional parallel imaging methods.
In Chapter 7, a new 2D sampling scheme was introduced consisting of multiple oscillating effi- cient trajectories (MOET), that is optimized for Compressed Sensing (CS) reconstructions. For successful CS reconstruction of a particular data set, some requirements have to be met. First, ev- ery data sample has to carry information about the whole object, which is automatically fulfilled for the Fourier sampling employed in MRI. Additionally, the image to be reconstructed has to be sparse in an arbitrary domain, which is true for a number of different applications. Last, data sam- pling has to be performed in an incoherent fashion. For 2D imaging, this important requirement of CS is difficult to achieve with conventional Cartesian and non-Cartesian sampling schemes. Ra- dial sampling is often used for CS reconstructions of dynamic data despite the streaking present in undersampled images. To obtain incoherent aliasing artifacts in undersampled images while at the same time preserving the advantages of radial sampling for dynamic imaging, MOET com- bines radial spokes with oscillating gradients of varying amplitude and alternating orientation orthogonal to the readout direction. The advantage of MOET over radial sampling in CS re- constructions was demonstrated in simulations and in in vivo cardiac imaging. MOET provides superior results especially when used in CS reconstructions with a sparsity constraint directly in image space. Here, accurate results could be obtained even from few MOET projections, while the coherent streaking artifacts present in the case of radial sampling prevent image recovery even for smaller acceleration factors. For CS reconstructions of dynamic data with sparsity constraint in xf-space, the advantage of MOET is smaller since the temporal reordering is responsible for an important part of incoherency. However, as was shown in simulations of a moving phantom and in the reconstruction of ungated cardiac data, the additional spatial incoherency provided by MOET still leads to improved results with higher accuracy and may allow reconstructions with higher acceleration factors.
Magnetic Resonance Imaging (MRI) is an imaging modality which provides anatomical or functional images of the human body with variable contrasts in an arbitrarily positioned slice without the need for ionizing radiation. In MRI, data are not acquired directly, but in the reciprocal image space (otherwise known as k-space) through the application of spatially variable magnetic field gradients. The k-space is made up of a grid of data points which are generally acquired in a line-by-line fashion (Cartesian imaging). After the acquisition, the k-space data are transformed into the image domain using the Fast Fourier Transformation (FFT). However, the acquisition of data is not limited to the rectilinear Cartesian sampling scheme described above. Non-Cartesian acquisitions, where the data are collected along exotic trajectories, such as radial and spiral, have been shown to be beneficial in a number of applications. However, despite their additional properties and potential advantages, working with non-Cartesian data can be complicated. The primary difficulty is that non-Cartesian trajectories are made up of points which do not fall on a Cartesian grid, and a simple and fast FFT algorithm cannot be employed to reconstruct images from non-Cartesian data. In order to create an image, the non-Cartesian data are generally resampled on a Cartesian grid, an operation known as gridding, before the FFT is performed. Another challenge for non-Cartesian imaging is the combination of unusual trajectories with parallel imaging. This thesis has presented several new non-Cartesian parallel imaging methods which simplify both gridding and the reconstruction of images from undersampled data. In Chapter 4, a novel approach which uses the concepts of parallel imaging to grid data sampled along a non-Cartesian trajectory called GRAPPA Operator Gridding (GROG) is described. GROG shifts any acquired k-space data point to its nearest Cartesian location, thereby converting non-Cartesian to Cartesian data. The only requirements for GROG are a multi-channel acquisition and a calibration dataset for the determination of the GROG weights. Chapter 5 discusses an extension of GRAPPA Operator Gridding, namely Self-Calibrating GRAPPA Operator Gridding (SC-GROG). SC-GROG is a method by which non-Cartesian data can be gridded using spatial information from a multi-channel coil array without the need for an additional calibration dataset, as required in standard GROG. Although GROG can be used to grid undersampled datasets, it is important to note that this method uses parallel imaging only for gridding, and not to reconstruct artifact-free images from undersampled data. Chapter 6 introduces a simple, novel method for performing modified Cartesian GRAPPA reconstructions on undersampled non-Cartesian k-space data gridded using GROG to arrive at a non-aliased image. Because the undersampled non-Cartesian data cannot be reconstructed using a single GRAPPA kernel, several Cartesian patterns are selected for the reconstruction. Finally, Chapter 7 discusses a novel method of using GROG to mimic the bunched phase encoding acquisition (BPE) scheme. In MRI, it is generally assumed that an artifact-free image can be reconstructed only from sampled points which fulfill the Nyquist criterion. However, the BPE reconstruction is based on the Generalized Sampling Theorem of Papoulis, which states that a continuous signal can be reconstructed from sampled points as long as the points are on average sampled at the Nyquist frequency. A novel method of generating the “bunched” data using GRAPPA Operator Gridding (GROG), which shifts datapoints by small distances in k-space using the GRAPPA Operator instead of employing zig-zag shaped gradients, is presented in this chapter. With the conjugate gradient reconstruction method, these additional “bunched” points can then be used to reconstruct an artifact-free image from undersampled data. This method is referred to as GROG-facilitated Bunched Phase Encoding, or GROG-BPE.
One rarely finds practical guidelines for the implementation of complex optical setups. Here, we aim to provide technical details on the decision making of building and revising a custom sensor-based adaptive optics (AO) direct stochastic optical reconstruction microscope (dSTORM) to provide practical assistance in setting up or troubleshooting similar devices.
The foundation of this report is an instrument constructed as part of a master's thesis in 2021, which was built for deep tissue imaging. The setup is presented in the following way: (1) An optical and mechanical overview of the system at the beginning of this internship is given. (2) The optical components are described in detail in the order at which the light passes through, highlighting their working principle and implementation in the system. The optical component include (2A) a focus on even sample illumination, (2B) restoring telecentricity when working with commercial microscope bodies, (2C) the AO elements, namely the deformable mirror (DM) and the wavefront sensor, and their integration, and (2D) the separation of wavefront and image capture using fluorescent beads and a dichroic mirror. After addressing the limitations of the existing setup, modification options are derived. The modifications include the implementation of adjustment only light paths to improve system stability and revise the degrees of freedom of the components and changes in lens choices to meet the specifications of the AO components. Last, the capabilities of the modified setup are presented and discussed: (1) First, we enable epifluorescence imaging of bead samples through 180 µm unstained murine hippocampal tissue with wavefront error correction of ~ 90 %. Point spread function, wavefront shape and Zernike decomposition of bead samples are presented. (2) Second, we move from epifluorescent to dSTORM imaging of tubulin stained primary mouse hippocampal cells, which are imaged through up to 180 µm of unstained murine hippocampal tissue. We show that full width at half maximum (FWHM) of prominent features can be reduced in size by nearly a magnitude from uncorrected epiflourescence images to dSTORM images corrected by the adaptive optics. We present dSTORM localization count and FWHM of prominent features as as a function of imaging depth.
This thesis aims to investigate the form-phase diagram of aqueous solutions of the triblock copolymer Pluronic P123 focusing on its high-temperature phases. P123 is based on polyethylene as well as polypropylene oxide blocks and shows a variety of di erent temperaturedependent micelle morphologies or even lyotropic liquid crystal phases in aqueous solutions. Besides the already well-studied spherical aggregates at intermediate temperatures, the size and internal structure of both worm-like and lamellar micelles, which appear near the cloud point, is determined using light, neutron and X-ray scattering. By combining the results of time-resolved dynamic light as well as small-angle neutron and X-ray scattering experiments, the underlying structural changes and kinetics of the sphere-to-worm transition were studied supporting the random fusion process, which is proposed in literature. For temperatures near the cloud point, it was observed that aqueous P123 solutions below the critical crystallization concentration gelate after several hours, which is linked to the presence and structure of polymeric surface layers on the sample container walls as shown by neutron re ectometry
measurements. Using a hierarchical model for the lamellar micelles including their periodicity as well as domain and overall size, it is possible to unify the existing results in literature and propose a direct connection between the near-surface and bulk properties of P123 solutions at temperatures near the cloud point.
Die Arbeit beschäftigt sich mit der Herstellung und Charakterisierung von AlGaInP Quantenpunkten auf GaP und GaAs-Substrat. Auf Basis dieser Quantenpunkte wurden Halbleiterlaser auf GaAs hergestellt, welche bei Raumtemperatur zwischen 660 nm und 730 nm emittierten. Die Untersuchung von Breitstreifenlasern, welche aus diesen Strukturen gefertigt wurden, legen nahe, dass man mithilfe eines höheren Aluminiumanteils in größeren Quantenpunkten bei vergleichbarer Wellenlänge Laser mit besseren Eigenschaften realisieren kann. Weiterhin wurden in dieser Arbeit Quantenpunkten auf GaP-Substrat untersucht, welche in AlGaP eingebettet wurden. Da diese Quantenpunkte in Barrieren eingebettet sind, welche eine indirekte Bandlücke besitzen, ergibt sich ein nicht-trivialer Bandverlauf innerhalb dieser Strukturen. In dieser Arbeit wurden numerische 3D-Simulationen verwendet, um den Bandverlauf zu berechnen, wobei Verspannung und interne Felder berücksichtigt wurden und auch die Grundzustandswellenfunktionen ermittelt wurden. Ein eingehender Vergleich mit dem Experiment setzt die gemessenen Emissionswellenlängen und -intensitäten mit berechneten Übergangsenergien und Überlappintegralen in Verbindung.
We uncover the fine structure of a silicon vacancy in isotopically purified silicon carbide (4H-\(^{28}\)SiC) and reveal not yet considered terms in the spin Hamiltonian, originated from the trigonal pyramidal symmetry of this spin-3/2 color center. These terms give rise to additional spin transitions, which would be otherwise forbidden, and lead to a level anticrossing in an external magnetic field. We observe a sharp variation of the photoluminescence intensity in the vicinity of this level anticrossing, which can be used for a purely all-optical sensing of the magnetic field. We achieve dc magnetic field sensitivity better than 100 nT/√Hz within a volume of 3×10\(^{−7}\)mm\(^3\) at room temperature and demonstrate that this contactless method is robust at high temperatures up to at least 500 K. As our approach does not require application of radio-frequency fields, it is scalable to much larger volumes. For an optimized light-trapping waveguide of 3 mm\(^3\), the projection noise limit is below 100 fT/√Hz.
Advanced LIGO detected a significant gravitational wave signal (GW170104) originating from the coalescence of two black holes during the second observation run on January 4th, 2017. An all-sky high-energy neutrino follow-up search has been made using data from the Antares neutrino telescope, including both upgoing and downgoing events in two separate analyses. No neutrino candidates were found within ±500 s around the GW event time nor any time clustering of events over an extended time window of ±3 months. The non-detection is used to constrain isotropic-equivalent high-energy neutrino emission from GW170104 to less than ∼ 1.2 × \(10^{55}\) erg for a \(E^{−2}\) spectrum. This constraint is valid in the energy range corresponding to the 5–95% quantiles of the neutrino flux [3.2 TeV; 3.6 PeV], if the GW emitter was below the Antares horizon at the alert time.
Under adequate conditions, cavity polaritons form a macroscopic coherent quantum state, known as polariton condensate. Compared to Wannier-Mott excitons in inorganic semiconductors, the localized Frenkel excitons in organic emitter materials show weaker interaction with each other but stronger coupling to light, which recently enabled the first realization of a polariton condensate at room temperature. However, this required ultrafast optical pumping, which limits the applications of organic polariton condensates. We demonstrate room temperature polariton condensates of cavity polaritons in simple laminated microcavities filled with biologically produced enhanced green fluorescent protein (eGFP). The unique molecular structure of eGFP prevents exciton annihilation even at high excitation densities, thus facilitating polariton condensation under conventional nanosecond pumping. Condensation is clearly evidenced by a distinct threshold, an interaction-induced blueshift of the condensate, long-range coherence, and the presence of a second threshold at higher excitation density that is associated with the onset of photon lasing.
Die stetige Degradation von Halbleiterlasern, speziell bei Bleichalkogenidlasern, erfordert in spektroskopischen Systemen eine regelmäßige Überwachung typischer Eigenschaften wie Abstimmcharakteristik und Linienbreite. Im Hinblick auf einen möglichst hohen Automatisierungsgrad wird langfristig eine Online-Analysemethode zur Überwachung notwendig sein. Die üblicherweise verwendete Methode, den Laserarbeitspunkt über zugrunde liegende Modenkarten einzustellen, hat den gravierenden Nachteil, dass solche Modenkarten in der Regel nicht unter dynamischen Modulationsbedingungen vermessen wurden. Gerade im dynamischen Fall sind diese Karten empfindlich abhängig gegenüber Veränderungen durch Zyklieren und Degradieren des Lasers. Etalons (Etalonsignale) sind bezüglich der Abstimmcharakteristik nicht zuverlässig genug und von daher für eine wünschenswerte Automatisierung nicht ausreichen. Modensprünge oder schwache Rückkopplungseffekte lassen sich im Interferogramm nicht ohne weiteres identifiziert. Eine erweiterte Analyse der Störungen dieser Interferogramme im Zeit-Frequenzbereich mittels einer AOK(Adaptive Optimal Kernel)-Transformation erwies sich speziell bei Signalen mit wenigen Perioden als deutlich aussagekräftiger. Mittels optischer Homodynmischung wurde die Linienbreite von Bleichalkogenidlasern ermittelt. Bei inkohärenter Überlagerung entspricht die spektrale Verteilung der Mischung der Faltung der ursprünglichen Verteilung mit sich selbst. Der Laser wird dabei nicht abgestimmt, die optische Laufzeitverzögerung wurde mittels integrierter White-Zelle realisiert. Es wurde beobachtet, dass je nach Grad des Rauschens des Injektionsstroms, das Linienbreitenprofil von Lorentz nach Gauß überging. Mit einem externen CO2-Laser als lokalen Oszillator wurden Heterodynmessungen durchgeführt. Die Linienbreite eines CO2-Lasers ist mit wenigen kHz im Vergleich zu derjenigen eines Bleichalkogenidlasers vernachlässigbar und die Überlagerung erfolgt absolut inkohärent. Gemessen wurden spektrale Verteilungen mit typischem Lorentzprofil von 10 MHz bis zu 100 MHz und darüber hinaus. Auffällig waren häufig symmetrische Nebenpeaks, die in den Bereichen der Seitenflanken des Lorentzprofils auftraten. Anhand einer numerischen Simulation eines Modells einer Laserdiode, basierend auf Ratengleichungen mit für Bleichalkogenidlasern typischen Parameterwerten, konnte verdeutlicht werden, dass sich durch das nichtlineare Lasermodell ausgeprägte Vielfache von Resonanzen bereits im Abstand von 25 MHz ausbilden können. Derartige Resonanzen tauchen im E-Feld-Spektrum als typische Relaxationsoszillationen in den Seitenbändern wieder auf und erklären die in der Messung beobachteten Nebenpeaks innerhalb der spektralen Verteilung. Die Stärke der Seitenbänder ist ein Maß für die Korrelation zwischen Phasen- und Amplitudenfluktuationen. Das Modell für die numerische Berechnung des E-Feldes wurde mit einem thermischen Verhalten erweitert. Eine umfassende Charakterisierungsmethode zur automatisierten Einstellung eines modulierten Lasersystems muss dynamisch und zeitaufgelöst erfolgen. Die Auswertung optischer Mischfrequenzen beschränkt sich dabei nicht mehr auf die direkte Interpretation von einzelnen Spektren, sondern erweitert sich auf die Analyse im Zeit-Frequenzraum. Für eine direkte und schnelle Zeitfrequenztransformation bietet sich ein „Gefensterte Fouriertransformation“ (STFT) an, die sich außerdem relativ einfach in moderne Signalprozessortechnik implementieren lässt. Sie erweist sich als sehr robust und für die hier erforderliche Analyse von Heterodynsignalen als ausreichend. Mit der Festlegung des Analysefensters innerhalb einer STFT ist die Auflösung in Zeit und Frequenz fest definiert. Analysen von Mischsignalen mit einer kontinuierlichen Wavelettransformation haben vergleichsweise gezeigt, dass Details im Zeitfrequenzraum zwar besser herausgearbeitet werden können, jedoch ist der Rechenaufwand durch die variable Skalierung und somit stark redundante Analyse und ihre Darstellung unverhältnismäßig größer. Eine Analyse des Linienbreitenprofils erfolgt dabei über die Entwicklung der Skalierung eines Signals. Die über Heterodynsignale ermittelte effektive Linienbreite bei einer modulierten Abstimmung sollte eher als „dynamische“ oder „intrinsische“ Laserlinienbreite bezeichnet werden. Eine direkte Korrelation der Frequenzvariation des Lasers mit dem Stromrauschen des Injektionsstroms ist offensichtlich. Die wirksame Bandbreite des Stromrauschens wird durch die Systemelektronik einerseits und die Modulationsbandbreite des Lasers andererseits begrenzt. Außer den wichtigen Parametern wie Abstimmung und Linienbreite lassen sich über die dynamische Zeitfrequenzanalyse von Heterodynsignalen darüber hinaus weitere Phänomene wie Rückkopplung, Modenüberlagerung oder Einschwingverhalten aufgrund direkter Kopplung zwischen Intensitäts und Frequenzmodulation beobachten.
Background and Objectives
To analyze the impact of humidity and temperature on excimer laser ablation of polyethylene terephthalate (PET), polymethylmethacrylate (PMMA) and porcine corneal tissue, and an ablation model to compensate for the temperature and humidity changes on ablation efficiency.
Study Design/Materials and Methods
The study was conducted using an AMARIS 1050RS (Schwind eye‐tech‐solutions) placed inside a climate chamber at ACTS. Ablations were performed on PET, PMMA, and porcine cornea. The impact of a wide range of temperature (~18°C to ~30°C) and relative humidity (~25% to ~80%) on laser ablation outcomes was tested using nine climate test settings. For porcine eyes, change in defocus was calculated from the difference of post‐ablation to pre‐ablation average keratometry readings. Laser scanning deflectometry was performed to measure refractive change achieved in PMMA. Multiple linear regression was performed using the least square method with predictive factors: temperature, relative humidity, time stamp. Influence of climate settings was modeled for pulse energy, pulse fluence, ablation efficiency on PMMA and porcine cornea tissue.
Results
Temperature changes did not affect laser pulse energy, pulse fluence (PET), and ablation efficiency (on PMMA or porcine corneal tissue) significantly. Changes in relative humidity were critical and significantly affected laser pulse energy, high fluence and low fluence. The opposite trend was observed between the ablation performance on PMMA and porcine cornea.
Conclusions
The proposed well‐fitting multi‐linear model can be utilized for compensation of temperature and humidity changes on ablation efficiency. Based on this model, a working window for optimum operation has been found (temperature 18°C to 28°C and relative humidity 25% to 65%) for a maximum deviation of ±2.5% in ablation efficiency in PMMA and porcine corneal tissue.
The material system of interest in this thesis are II-VI-semiconductors. The first part of this thesis focuses on the formation of self-assembled CdSe-based quantum dots (QD) on ZnSe. The lattice constants of ZnSe and CdSe differ as much as about 7\% and therefore a CdSe layer grown on top of ZnSe experiences a huge strain. The aspired strain relief constitutes in the self-assembly of QDs (i.e. a roughened layer structure). Additionally, this QD layer is intermixed with Zn as this is also a possibility to decrease the strain in the layer. For CdSe on ZnSe, in Molecular Beam Epitaxy (MBE), various QD growth procedures were analysed with respect to the resulting Cd-content of the non-stoichiometric ternary (Zn,Cd)Se. The evaluation was performed by Raman Spectroscopy as the phonon frequency depends on the Cd-content. The second part of the thesis emphasis on the interface properties of n-ZnSe on n-GaAs. Different growth start procedures of the ZnSe epilayer may lead to different interface configurations with characteristic band-offsets and carrier depletion layer widths. The analysis is mainly focused on the individual depletion layer widths in the GaAs and ZnSe. This non-destructive analysis is performed by evaluating the Raman signal which comprises of phonon scattering from the depleted regions and coupled plasmon-phonon scattering from regions with free carriers.
Analysis of Triplet Exciton Loss Pathways in PTB7:PC\(_{71}\)BM Bulk Heterojunction Solar Cells
(2016)
A strategy for increasing the conversion efficiency of organic photovoltaics has been to increase the VOC by tuning the energy levels of donor and acceptor components. However, this opens up a new loss pathway from an interfacial charge transfer state to a triplet exciton (TE) state called electron back transfer (EBT), which is detrimental to device performance. To test this hypothesis, we study triplet formation in the high performing PTB7:PC\(_{71}\)BM blend system and determine the impact of the morphology-optimizing additive 1,8-diiodoctane (DIO). Using photoluminescence and spin-sensitive optically detected magnetic resonance (ODMR) measurements at low temperature, we find that TEs form on PC\(_{71}\)BM via intersystem crossing from singlet excitons and on PTB7 via EBT mechanism. For DIO blends with smaller fullerene domains, an increased density of PTB7 TEs is observed. The EBT process is found to be significant only at very low temperature. At 300 K, no triplets are detected via ODMR, and electrically detected magnetic resonance on optimized solar cells indicates that TEs are only present on the fullerenes. We conclude that in PTB7:PC\(_{71}\)BM devices, TE formation via EBT is impacted by fullerene domain size at low temperature, but at room temperature, EBT does not represent a dominant loss pathway.
Die Dynamik der Kernspindephasierung in lebenden Systemen enhält relevante Informationen über biologisch wichtige Parameter, wie Sauerstoffversorgung, Mikrozirkulation, Diffusion etc.. Ursächlich für die Dephasierung sind Interaktionen des Spins mit fluktuierenden Magnetfeldern. Notwendig sind also Modelle, welche diese Interaktionen mit den biologisch relevanten Parametern in Beziehung setzen. Problematisch ist, daß fast alle analytische Ansätze nur in extremen Dynamikbereichen der Störfeldfluktuationen (motional narrowing - , static dephasing limit) gültig sind. In dieser Arbeit zeigen wir einen Ansatz, mit dem man die Dynamik der Störfeldfluktuationen erheblich vereinfachen und trotzdem noch deren wesentliche Eigenschaften beibehalten kann. Dieser Ansatz ist nicht auf einen speziellen Dynamikbereich festgelegt. Angewendet wird dieses Näherungsverfahren zur Beschreibung der Spin Dephasierung im Herzmuskel. Die Relaxationszeiten erhält man als Funktion der Kapillardichte und Blutoxygenierung. Vergleiche mit numerisch errechneten Daten anderer, eigenen Messungen am menschlichen Herzen und experimentellen Befunden in der Literatur, bestätigen die theoretischen Vorhersagen.
Röntgencomputertomographie (CT) hat in ihrer industriellen Anwendung ein sehr breites Spektrum möglicher Prüfobjekte. Ziel einer CT-Messung sind dreidimensionale Abbilder der Verteilung des Schwächungskoeffizienten der Objekte mit möglichst großer Genauigkeit. Die Parametrierung eines CT-Systems für ein optimales Messergebnis hängt stark vom zu untersuchenden Objekt ab. Eine Vorhersage der optimalen Parameter muss die physikalischen Wechselwirkungen mit Röntgenstrahlung des Objektes und des CT-Systems berücksichtigen. Die vorliegende Arbeit befasst sich damit, diese Wechselwirkungen zu modellieren und mit der Möglichkeit den Prozess zur Parametrierung anhand von Gütemaßen zu automatisieren. Ziel ist eine simulationsgetriebene, automatische Parameteroptimierungsmethode, welche die Objektabhängigkeit berücksichtigt. Hinsichtlich der Genauigkeit und der Effizienz wird die bestehende Röntgensimulationsmethodik erweitert. Es wird ein Ansatz verfolgt, der es ermöglicht, die Simulation eines CT-Systems auf reale Systeme zu kalibrieren. Darüber hinaus wird ein Modell vorgestellt, welches zur Berechnung der zweiten Ordnung der Streustrahlung im Objekt dient. Wegen des analytischen Ansatzes kann dabei auf eine Monte-Carlo Methode verzichtet werden. Es gibt in der Literatur bisher keine eindeutige Definition für die Güte eines CT-Messergebnisses. Eine solche Definition wird, basierend auf der Informationstheorie von Shannon, entwickelt. Die Verbesserungen der Simulationsmethodik sowie die Anwendung des Gütemaßes zur simulationsgetriebenen Parameteroptimierung werden in Beispielen erfolgreich angewendet beziehungsweise mittels Referenzmethoden validiert.
Zur Beurteilung der Lungenanatomie wurde das MT-STIR-Verfahren vorgestellt. Es wurde gezeigt, dass das MT-STIR-Verfahren das störende Signal des umgebenden Muskelgewebes effektiv unterdrückt und damit die Visualisierung des Lungenparenchyms verbessert. Im Vergleich zu konventionellen anatomischen 1H-MR-Verfahren wie IR- und MIR-Verfahren erhöht das MT-STIR-Verfahren das Signal-zu-Rausch-Verhältnis (SNR) des Lungenparenchyms signifikant und vermeidet den Signalausfall des Lungenparenchyms aufgrund der pathologischen Verkürzung der Lungen-T1-Relaxationszeit auf ca. 900 ms wie bei Patienten mit Mukoviszidose (CF), so dass sowohl große Lungenperfusionsdefekte in Patienten mit CF als auch kleine ungefährliche Lungenentzündungen in „gesunden“ Probanden durch das MT-STIR-Verfahren gut dargestellt werden können. Für die indirekte, aber quantitative Beurteilung der Lungenventilation wurde die oben genannte schnelle quantitative Lungen-T1-Mapping-Technik während der Inhalation eines Atemgasgemisches mit verschiedenen O2-Konzentrationen (21%, 40%, 60%, 80% und 100%) eingesetzt. Dabei ist im Blut physikalisch gelöster Sauerstoff leicht paramagnetisch und dient als Blut-T1-verkürzendes MR-Kontrastmittel (KM). In der Lunge ist das Blut die Hauptquelle des freien Wassers, so dass Lungen-T1-Werte nach dem Zwei-Kompartimente-Schnellaustausch-Modell der Lungen-T1-Relaxationszeit durch den Blut-T1-Wert beeinflusst werden. Die zugehörige Theorie, ein O2-gestütztes Lungen-T1-Modell, wurde aus der Lungenphysiologie und den T1-Relaxationsmechanismen hergeleitet und zeigt, dass bei Probanden die Lungen-T1-Verkürzung von 21% O2 zu 100% O2 ca. 11% beträgt und die Beziehung zwischen dem Lungen-R1 (= 1/T1)-Wert und der inhalierten O2-Konzentration linear mit einer Steigung von 0,12 1/s und einem R1-Achsenabschnitt von 0,70 1/s ist. Die Steigung wurde im Rahmen dieser Doktorarbeit als oxygen transfer function (OTF) definiert und ist vom gasaustauschbestimmenden Ventilations-Perfusions- und Diffusions-Perfusions-Verhältnis abhängig, so dass sie praktisch ein Maß für den pulmonalen Gasaustausch darstellt. Experimentell wurde gezeigt, dass Lungen-T1-Werte bei 100% O2 um 10% kürzer als bei 21% O2 sind, was gut mit dem O2-gestützten Lungen-T1-Modell übereinstimmt. Weiterhin wurde die OTF dadurch bestimmt, dass die gemessenen Lungen-R1-Werte gegen die inhalierte O2-Konzentration aufgetragen wurden und eine Gerade an die Messpunkte angepasst wurde. Gesundes Lungenparenchym von Probanden und gut perfundiertes Lungenparenchym von Patienten mit CF zeigten OTF-Werte zwischen 0,10 und 0,14 1/s, R1-Achsenabschnitte zwischen 0,70 und 0,80 1/s und ausgezeichnete Korrelationskoeffizienten von annähernd 1,00, was mit dem O2-gestützten Lungen-T1-Modell übereinstimmt. Schlecht perfundiertes Lungenparenchym von Patienten mit CF zeigte eindeutig erniedrigte OTF-Werte, erhöhte R1-Achsenabschnitte und schlechte Korrelationskoeffizienten. Das O2-gestützte Lungen-T1-Mapping-Verfahren zeigt eine hohe Reproduzierbarkeit. Zur Beurteilung der Lungenperfusion wurde eine quantitative Perfusionsmapping-Technik mittels Protonen-Spin-Labeling, ohne Verwendung eines intravenösen Kontrastmittels wie Gadolinium (Gd)-DTPA, vorgestellt. Aus einer nicht-schichtselektiven (globalen) T1-Map und einer schichtselektiven T1-Map derselben Lungenschicht, die jeweils mit der oben genannten schnellen quantitativen Lungen-T1-Mapping-Technik akquiriert wurde, wurde eine Perfusionamap berechnet, wobei jedes Pixel in der Perfusionsmap eine Perfusionsrate in Einheiten von m/100g/min hat. Es wurde demonstriert, dass die hintere coronale Lungenschicht eine höhere Perfusionsrate als die vordere coronale Lungenschicht desselben Probanden hatte, als er in Rückenlage gemessen wurde, was den Gravitationseffekt auf die Lungenperfusion bestätigt. Die berechneten Perfusionsraten des gut perfundierten Lungenparenchyms von Probanden und von Patienten mit CF lagen zwischen 400 und 600 m/100g/min, die gut mit dem Literaturwert übereinstimmen. Die berechneten Perfusionsraten des schlecht perfundierten Lungenparenchyms von Patienten mit CF waren niedriger als 200 m/100g/min. Die Spin-Labeling-Technik zeigte eine hohe Reproduzierbarkeit und niedrige relative Fehler der berechneten Perfusionsraten.
Die vorliegende Arbeit beleuchtet verschiedene Aspekte des Ladungstransports in Heterokontakten aus Normal- (N) und Supraleitern (S) im Rahmen des Bogoliubov-de Gennes-Formalismus. Dabei ist der bestimmende Prozeß die Andreev-Streuung: die Streuung von Elektronen in Löcher, bzw. umgekehrt, an räumlichen Variationen des supraleitenden Paarpotentials unter Erzeugung, bzw. Vernichtung, eines Cooperpaares und damit der Induktion eines Suprastroms. Befindet sich ein Supraleiter zwischen zwei normalleitenden Bereichen, so wandelt sich der an der einen NS-Phasengrenze durch Andreev-Streuung induzierte Suprastrom an der anderen NS-Phasengrenze wieder in einen durch Quasiteilchen getragenen Strom um. Diese Umwandlung erfolgt durch den Einfall eines Quasiteilchens, dessen Charakter dem des auf der gegenüberliegenden Seite des Supraleiters einfallenden Quasiteilchens entgegengerichtet ist, wie anhand von Wellenpaket-Rechnungen explizit gezeigt wird. Ersetzt man den Supraleiter durch einen mesoskopischen SNS-Kontakt, ist die Vielteilchen-Konfiguration in der mittleren N-Schicht phasenkohärent und daher verschieden von den unkorrelierten Quasiteilchen-Anregungen, die die verschobene Fermi-Kugel in den normalleitenden Zuleitungen bilden. Die Josephson-Ströme, die durch die Quasiteilchen in der mittleren N-Schicht getragen werden, werden unter zwei verschiedenen Modellannahmen berechnet: Im einen Fall werden nur Streuzustände als Startzustände betrachtet, im anderen, bei gleichzeitiger Berücksichtigung eines normalstreuenden Potentials, nur gebundene Zustände. Der SNS-Kontakt wird durch eine supraleitend/halbleitende Heterostruktur modelliert, deren Parameter-Werte sich an den Experimenten der Gruppe von Herbert Kroemer in Santa Barbara orientieren. Wenn die supraleitenden Bereiche ohne normalleitende Zuleitungen direkt mit einem Reservoir von Cooperpaaren verbunden sind, fallen nur Quasiteilchen in Streuzuständen aus den supraleitenden Bänken auf die NS-Phasengrenzen des Kontaktes ein. Mit den Normalleiter-Wellenfunktionen, die sich bei Anlegen einer Spannung V aus diesen Startzuständen entwickeln, wird die Josephson-Wechselstromdichte in der Mitte der N-Schicht bei der Temperatur T = 2,2 K berechnet. Die Stromdichte weist spannungsabhängige Oszillationen in der Zeit auf, deren Periode das Inverse der Josephson-Frequenz ist. Alle Stromdichten zeigen bei kleinen Spannungen einen steilen Anstieg ihres Betrages, der durch Quasiteilchen zustandekommt, die durch das elektrische Feld aus dem Kondensat kommend in den Paarpotentialtopf hineingezogen werden und dort bei kleinen Spannungen eine große Zahl von Andreev-Streuungen erfahren, wobei sie bei jedem Elektron-Loch-Zyklus die Ladung 2e durch die N-Schicht transportieren. Im zweiten betrachteten Fall wird unter Berücksichtigung von Normalstreuung der Gesamtzustand des Systems zu jedem Zeitpunkt durch eine Superposition von gebundenen Zuständen ausgedrückt. Die Energie dieser gebundenen Zustände ist abhängig von der Phasendifferenz Phi zwischen den supraleitenden Schichten. Für Werte der Phasendifferenz von ganzzahligen Vielfachen von Pi sind Zustände entgegengerichteter Impulse paarweise entartet. Das normalstreuende Potential mischt diese Zustände, hebt ihre Entartung auf und führt zu Energielücken: Es bilden sich Energiebänder im Phi-Raum, die formal den Bloch-Bändern von Kristallen im Wellenzahlraum entsprechen. Wird eine äußere Spannung angelegt, so ändert sich die Phasendifferenz gemäß der Josephson-Gleichung mit der Zeit und die Quasiteilchen oszillieren in ihren jeweiligen Phi-Bloch-Bändern: Diese Josephson-Bloch-Oszillationen ergeben den "normalen" Josephson-Wechselstrom, der zwischen positiven und negativen Werten schwingt und im zeitlichen Mittel Null ist. Zusätzlich können die Quasiteilchen durch Zener-Tunneln --- wie der analoge Prozeß in der Halbleiterphysik genannt wird --- in höhere Bänder übergehen. Während sich die Richtung der Josephson-Stromdichte zu den Zeiten minimaler Energielücke umkehrt, hat die Zener-Tunnel-Stromdichte nach einem Tunnel-Prozeß das gleiche Vorzeichen, das die Josephson-Stromdichte vor dem Tunnel-Prozeß hatte. Wenn die angelegte Spannung hinreichend groß ist und genügend Quasiteilchen in das höhere Band tunneln, überkompensiert die Zener-Tunnel-Stromdichte in der Halbperiode nach dem Tunnel-Prozeß die Josephson-Stromdichte, und die Gesamtstromdichte schwingt wieder in dieselbe Richtung wie vor dem Zener-Tunneln. Somit hat sich gewissermaßen die Periode halbiert: Die Gesamtstromdichte schwingt mit der doppelten Josephson-Frequenz. Allen untersuchten Aspekten des Ladungstransports durch Heterokontakte aus Normal- und Supraleitern ist eines gemein: Der für ihr Verständnis fundamentale Prozeß ist die Andreev-Streuung.
Fascinating pictures that can be interpreted as showing molecular orbitals have been obtained with various imaging techniques. Among these, angle resolved photoemission spectroscopy (ARPES) has emerged as a particularly powerful method. Orbital images have been used to underline the physical credibility of the molecular orbital concept. However, from the theory of the photoemission process it is evident that imaging experiments do not show molecular orbitals, but Dyson orbitals. The latter are not eigenstates of a single-particle Hamiltonian and thus do not fit into the usual simple interpretation of electronic structure in terms of molecular orbitals. In a combined theoretical and experimental study we thus check whether a Dyson-orbital and a molecular-orbital based interpretation of ARPES lead to differences that are relevant on the experimentally observable scale. We discuss a scheme that allows for approximately calculating Dyson orbitals with moderate computational effort. Electronic relaxation is taken into account explicitly. The comparison reveals that while molecular orbitals are frequently good approximations to Dyson orbitals, a detailed understanding of photoemission intensities may require one to go beyond the molecular orbital picture. In particular we clearly observe signatures of the Dyson-orbital character for an adsorbed semiconductor molecule in ARPES spectra when these are recorded over a larger momentum range than in earlier experiments.
An angular analysis of the decay B-d(0) -> K*mu(+)mu(-) is presented, based on proton-proton collision data recorded by the ATLAS experiment at the LHC. The study is using 20.3 fb(-1) of integrated luminosity collected during 2012 at centre-of-mass energy of root s = 8TeV. Measurements of the K* longitudinal polarisation fraction and a set of angular parameters obtained for this decay are presented. The results are compatible with the Standard Model predictions.
Ferromagnetic semiconductors (FS) promise the integration of magnetic memory functionalities and semiconductor information processing into the same material system. The prototypical FS (Ga,Mn)As has become the focus of semiconductor spintronics research over the past years. The spin-orbit mediated coupling of magnetic and semiconductor properties in this material gives rise to many novel transport-related phenomena which can be harnessed for device applications. In this thesis we address challenges faced in the development of an all-semiconductor memory architecture. A starting point for information storage in FS is the knowledge of their detailed magnetic anisotropy. The first part of this thesis concentrates on the investigation of the magnetization behaviour in compressively strained (Ga,Mn)As by electrical means. The angle between current and magnetization is monitored in magnetoresistance(MR) measurements along many in-plane directions using the Anisotropic MR(AMR) or Planar Hall effect(PHE). It is shown, that a full angular set of such measurements displayed in a color coded resistance polar plot can be used to identify and quantitatively determine the symmetry components of the magnetic anisotropy of (Ga,Mn)As at 4 K. We compile such "anisotropy fingerprints" for many (Ga,Mn)As layers from Wuerzburg and other laboratories and find the presence of three symmetry terms in all layers. The biaxial anisotropy term with easy axes along the [100] and [010] crystal direction dominates the magnetic behaviour. An additional uniaxial term with an anisotropy constant of ~10% of the biaxial one has its easy axis along either of the two <110> directions. A second contribution of uniaxial symmetry with easy axis along one of the biaxial easy axes has a strength of only ~1% of the biaxial anisotropy and is therefore barely visible in standard SQUID measurements. An all-electrical writing scheme would be desirable for commercialization. We report on a current assisted magnetization manipulation experiment in a lateral (Ga,Mn)As nanodevice at 4 K (far below Tc). Reading out the large resistance signal from DW that are confined in nanoconstrictions, we demonstrate the current assisted magnetization switching of a small central island through a hole mediated spin transfer from the adjacent leads. One possible non-perturbative read-out scheme for FS memory devices could be the recently discovered Tunneling Anisotropic MagnetoResistance (TAMR) effect. Here we clarify the origin of the large amplification of the TAMR amplitude in a device with an epitaxial GaAs tunnel barrier at low temperatures. We prove with the help of density of states spectroscopy that a thin (Ga,Mn)As injector layer undergoes a metal insulator transition upon a change of the magnetization direction in the layer plane. The two states can be distinguished by their typical power law behaviour in the measured conductance vs voltage tunneling spectra. While all hereto demonstrated (Ga,Mn)As devices inherited their anisotropic magnetic properties from their parent FS layer, more sophisticated FS architectures will require locally defined FS elements of different magnetic anisotropy on the same wafer. We show that shape anisotropy is not applicable in FS because of their low volume magnetization. We present a method to lithographically engineer the magnetic anisotropy of (Ga,Mn)As by submicron patterning. Anisotropic strain relaxation in submicron bar structures (nanobars) and the related deformation of the crystal lattice introduce a new uniaxial anisotropy term in the energy equation. We demonstrate by both SQUID and transport investigations that this lithographically induced uniaxial anisotropy overwrites the intrinsic biaxial anisotropy at all temperatures up to Tc. The final section of the thesis combines all the above into a novel device scheme. We use anisotropy engineering to fabricate two orthogonal, magnetically uniaxial, nanobars which are electrically connected through a constriction. We find that the constriction resistance depends on the relative orientation of the nanobar magnetizations, which can be written by an in-plane magnetic field. This effect can be explained with the AMR effect in connection with the field line patterns in the respective states. The device offers a novel non-volatile information storage scheme and a corresponding non-perturbative read-out method. The read out signal is shown to increase drastically in samples with partly depleted constriction region. This could be shown to originate in a magnetization direction driven metal insulator transition of the material in the constriction region.