Refine
Has Fulltext
- yes (27)
Is part of the Bibliography
- yes (27) (remove)
Year of publication
- 2012 (27) (remove)
Document Type
- Doctoral Thesis (18)
- Journal article (7)
- Preprint (2)
Keywords
- Quantenpunkt (4)
- Drei-Fünf-Halbleiter (3)
- Kernspintomografie (3)
- MRI (3)
- NMR-Tomographie (3)
- ATLAS (2)
- Heterostruktur (2)
- Higgs (2)
- LHC (2)
- Molekularstrahlepitaxie (2)
Institute
- Physikalisches Institut (27) (remove)
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.
This thesis focuses on various aspects and techniques of 19F magnetic resonance (MR). The first chapters provide an overview of the basic physical properties, 19F MR and MR sequences related to this work. Chapter 5 focuses on the application of 19F MR to visualize biological processes in vivo using two different animal models. The dissimilar models underlined the wide applicability of 19F MR in preclinical research. A subsection of Chapter 6 shows the application of compressed sensing (CS) to 19F turbo-spin-echo chemical shift imaging (TSE-CSI), which leads to reduced measurement time. CS, however, can only be successfully applied when a sufficient signal-to-noise ratio (SNR) is available. When the SNR is low, so-called spike artifacts occur with the CS algorithm used in the present work. However, it was shown in an additional subsection that these artifacts can be reduced using a CS-based post processing algorithm. Thus, CS might help overcome limitations with time consuming 19F CSI experiments. Chapter 7 deals with a novel technique to quantify the B+1 profile of an MR coil. It was shown that, using a specific application scheme of off resonant pulses, Bloch-Siegert (BS)-based B+1 mapping can be enabled using a Carr Purcell Meiboom Gill (CPMG)-based TSE sequence. A fast acquisition of the data necessary for B+1 mapping was thus enabled. In the future, the application of BS-CPMG-TSE B+1 mapping to improve quantification using 19F MR could therefore be possible.
Graphene's peculiar electronic band structure makes it of interest for new electronic and spintronic approaches. However, potential applications suffer from quantization effects when the spatial extension reaches the nanoscale. We show by photoelectron spectroscopy on nanoscaled model systems (disc-shaped, planar polyacenes) that the two-dimensional band structure is transformed into discrete states which follow the momentum dependence of the graphene Bloch states. Based on a simple model of quantum wells, we show how the band structure of graphene emerges from localized states, and we compare this result with ab initio calculations which describe the orbital structure.
Direct cooling of the catheter tip increases safety for CMR-guided electrophysiological procedures
(2012)
Background: One of the safety concerns when performing electrophysiological (EP) procedures under magnetic resonance (MR) guidance is the risk of passive tissue heating due to the EP catheter being exposed to the radiofrequency (RF) field of the RF transmitting body coil. Ablation procedures that use catheters with irrigated tips are well established therapeutic options for the treatment of cardiac arrhythmias and when used in a modified mode might offer an additional system for suppressing passive catheter heating.
Methods: A two-step approach was chosen. Firstly, tests on passive catheter heating were performed in a 1.5 T Avanto system (Siemens Healthcare Sector, Erlangen, Germany) using a ASTM Phantom in order to determine a possible maximum temperature rise. Secondly, a phantom was designed for simulation of the interface between blood and the vascular wall. The MR-RF induced temperature rise was simulated by catheter tip heating via a standard ablation generator. Power levels from 1 to 6 W were selected. Ablation duration was 120 s with no tip irrigation during the first 60 s and irrigation at rates from 2 ml/min to 35 ml/min for the remaining 60 s (Biotronik Qiona Pump, Berlin, Germany). The temperature was measured with fluoroscopic sensors (Luxtron, Santa Barbara, CA, USA) at a distance of 0 mm, 2 mm, 4 mm, and 6 mm from the catheter tip. Results: A maximum temperature rise of 22.4 degrees C at the catheter tip was documented in the MR scanner. This temperature rise is equivalent to the heating effect of an ablator's power output of 6 W at a contact force of the weight of 90 g (0.883 N). The catheter tip irrigation was able to limit the temperature rise to less than 2 degrees C for the majority of examined power levels, and for all examined power levels the residual temperature rise was less than 8 degrees C.
Conclusion: Up to a maximum of 22.4 degrees C, the temperature rise at the tissue surface can be entirely suppressed by using the catheter's own irrigation system. The irrigated tip system can be used to increase MR safety of EP catheters by suppressing the effects of unwanted passive catheter heating due to RF exposure from the MR scanner.
In dieser Arbeit wurden Einzel-Quantenpunkt-Speichertransistoren im Experiment untersucht und wesentliche Ergebnisse durch Modellierung nachgebildet. Der Einzel-Quantenpunkt-Speichertransistor ist ein Bauelement, welches durch eine neuartige Verfahrensweise im Schichtaufbau und bei der Strukturierung realisiert wurde. Hierbei sind vor allem zwei Teilschritte hervorzuheben: Zum einen wurde das Speicherelement aus positionskontrolliert gewachsenen InAs Quantenpunkten gebildet. Zum anderen wurden durch eine spezielle Trockenätztechnik schmale Ätzstrukturen erzeugt, welche sehr präzise an der lateralen Position der Quantenpunkte ausgerichtet war. Durch diese Verfahrensweise war es somit möglich, Transistorstrukturen mit einzelnen Quantenpunkten an den charakteristischen Engstellen des Kanals zu realisieren.
Detailed measurements of the electron performance of the ATLAS detector at the LHC are reported, using decays of the Z, W and J/ψ particles. Data collected in 2010 at s√=7 TeV are used, corresponding to an integrated luminosity of almost 40 pb\(^{−1}\). The inter-alignment of the inner detector and the electromagnetic calorimeter, the determination of the electron energy scale and resolution, and the performance in terms of response uniformity and linearity are discussed. The electron identification, reconstruction and trigger efficiencies, as well as the charge misidentification probability, are also presented.
A primary focus of the semiconductor industry is the miniaturisation of active devices. This work shows an experimental approach to fabricate small three-terminal devices suitable for the characterisation of single molecules. The nanoelectrodes are fabricated by high resolution electron-beam lithography and electromigration. First measurements on buckyball and pentaphenylene molecules are presented.
Optisch transparente und elektrisch leitfähige Funktionsschichten auf der Basis dotierter Metalloxid-Halbleiter spielen eine bedeutende Rolle als wärmestrahlungsreflektierende Schichten in der modernen Architektur. Über die im Material vorhandenen freien Ladungsträger wird eine kollektive Anregung im infraroten Spektralbereich ermöglicht, die zu einem Anstieg der Reflektivität der Metalloxidschicht führt. Dies geht einher mit einer Reduktion der Wärmeabstrahlung der Funktionsschicht. Die Motivation der vorliegenden Dissertation lag in der Herstellung, sowie in einer umfassenden Analyse der infrarot-optischen, elektrischen und strukturellen Charakteristika von nasschemisch abgeschiedenen Funktionsschichten auf Basis von Zinn-dotiertem Indiumoxid und Aluminium-dotiertem Zinkoxid. Die Prämisse war hierbei, dass die Funktionsschichten einen möglichst hohen Reflexionsgrad, respektive einen geringen thermischen Emissionsgrad im infraroten Spektralbereich aufweisen. Im Rahmen der Arbeit wurden deshalb vorrangig die Einflüsse der Sol-Parameter und der Art der Probenpräparation auf die infrarot-optischen Schichteigenschaften hin untersucht. Hierbei hat sich gezeigt, dass es verschiedene Möglichkeiten gibt, die Eigenschaften der Funktionsschichten im infraroten Spektralbereich zu beeinflussen. Dies kann einerseits bereits bei der Herstellung der Beschichtungslösungen über eine Variation von Parametern wie dem Grad der Dotierung bzw. der Konzentration des Sols erfolgen. Andererseits lassen sich gewünschte infrarot-optische Schichteigenschaften direkt über eine Anpassung der Kristallisationstemperaturen unter Zuhilfenahme geeigneter oxidierender und reduzierender Prozessgase einstellen. Im Verlauf der Optimierung der Probenpräparation konnte zudem gezeigt werden, dass eine Variation der Anzahl der Funktionsschichten und die damit verbundene Veränderung der Schichtdicke maßgebliche Einflüsse auf die infrarot-optischen Eigenschaften hat. Die umfassende optische Charakterisierung der optimierten Proben vom UV über den sichtbaren Spektralbereich bis hin zum IR ergab, dass der Gesamtemissionsgrad eines Glassubstrats durch die Aufbringung eines Mehrschichtsystems deutlich gesenkt werden kann, wobei sich die visuelle Transparenz nur geringfügig ändert. Im Falle des verwendeten Indium-Zinn-Oxids genügt eine vierfache Beschichtung mit einer Dicke von rund 450 nm, um den Emissionsgrad von unbeschichtetem Glas (0.89) auf unter 0.20 zu senken, wobei die visuelle Transparenz mit 0.85 nur um rund 6 % abnimmt. Bei Aluminium-Zink-Oxid ergibt sich ein Optimum mit einer rund 1 µm dicken Beschichtung, bestehend aus 11 Einzelschichten, die den Emissionsgrad der Oberfläche auf unter 0.40 senkt. Die optische Transparenz liegt hierbei mit 0.88 nur geringfügig unter dem unbeschichteten Glas mit einem Wert von 0.91. Neben der ausführlichen Charakterisierung der Einflüsse auf die IR-optischen Schichteigenschaften lag der Fokus der Arbeit auf der Analyse der strukturellen und elektrischen Eigenschaften der optimierten Proben. Mittels REM- und AFM-Aufnahmen konnten Einblicke in die Schichtstruktur und Oberflächenbeschaffenheit der erzeugten Funktionsschichten gewonnen werden. Es hat sich gezeigt, dass bedingt durch dicht beieinanderliegende Kristallite eine geringe Porosität innerhalb der Funktionsschicht entsteht, wodurch eine relativ hohe elektrische Leitfähigkeit gewährleistet ist. Dabei resultiert eine homogene Oberflächenstruktur mit einer geringen Oberflächenrauheit. Die Homogenität der Funktionsschichten, speziell im Hinblick auf eine gleichmäßige Verteilung der maßgeblichen Atome, wurde mit Hilfe von SNMS- Messungen und einem EDX-Element-Mapping verifiziert. Mit Hilfe der Analyse des spezifischen Widerstands der optimierten Funktionsschichten konnte ein Zusammenhang zwischen den infrarot-optischen und elektrischen Schichteigenschaften über die Hagen-Rubens Relation erarbeitet werden. Darüber hinaus wurden an den besten, infrarot-optisch optimierten Proben charakteristische Parameter wie die Bandlückenenergie, die Ladungsträgerdichte und die Ladungsträgerbeweglichkeit ermittelt. Über die Ladungsträgerdichte war es zudem möglich, die spektrale Lage der Plasmawellenlänge zu bestimmen. Basierend auf den ermittelten Werten der optimierten Metalloxidschichten im Bereich der elektronischen Charakterisierung konnte eine Korrelation der infrarot-optischen und elektrischen Schichteigenschaften anhand charakteristischer Punkte im Spektrum der Funktionsschichten erarbeitet werden. Abschließend wurde der Verlauf des spektralen Reflexionsgrads theoretisch modelliert und über eine Parametervariation an den tatsächlich gemessenen Reflexionsgrad der infrarot-optisch optimierten Proben angefittet. Hierbei zeigte sich eine gute Übereinstimmung der in den physikalischen Grundlagen der vorliegenden Arbeit getroffenen Annahmen mit den experimentell ermittelten Werten.
Within the scope of this thesis two main topics have been investigated: the examination of micromagnetic sensors and transport of massive and massless Dirac fermions in HgTe quantum wells. For the investigation of localized, inhomogeneous magnetic fields, the fabrication and characterization of two different non-invasive and ultra sensitive sensors has been established at the chair ”Experimentelle Physik” of the University of Würzburg. The first sensor is based on the young technique named micro-Hall magnetometry. The necessary semiconductor devices (Hall cross structures) were fabricated by high-resolution electron beam lithography based on two different two dimensional electron gases (2DEGs), namely InAs/(Al,Ga)Sb- and HgTe/(Hg,Cd)Te- heterostructures. The characteristics have been examined in two different ways. Measurements in homogeneous magnetic fields served for characterization of the sensors, whereas the investigation of artificially produced sub-µm magnets substantiates the suitability of the devices for the study of novel nanoscale magnetic materials (e.g. nanowires). Systematic experiments with various magnets are in accordance with the theory of single-domain particles and anisotropic behavior due to shapes with high aspect ratio. The highest sensitivity for strongly localized fields was obtained at T = 4.2 K for a (200x200) nm^2 Hall cross - made from shallow, high mobility HgTe 2DEG. Although the field resolution was merely δB ≈ 100 µT, the nanoscale sensor size yields an outstanding flux resolution of δΦ = 2 10^(−3) Φ0, where Φ0 = h/2e is the flux quantum. Translating this result in terms of magnetic moment, the sensitivity allows for the detection of magnetization changes of a particle centered on top of the sensor as low as δM ≈ 10^2 µB, with the magnetic moment of a single electron µB, the Bohr magneton. The further examination of a permalloy nanomagnet with a cross-section of (100x20) nm^2 confirms the expected resolution ability, extracted from the noise of the sensor. The observed high signal-to-noise ratio validates the detection limit of this sensor in terms of geometry. This would be reached for a magnet (same material) with quadratic cross-section for an edge length of 3.3 nm. Moreover, the feasibility of this sensor for operation in a wide temperature range (T = mK... > 200 K) and high magnetic fields has been confirmed. The second micromagnetic sensor is the micro-SQUID (micro-Superconducting-QUantum-Interference-Device) based on niobium. The typical sensor area of the devices built in this work was (1.0x1.0) µm^2, with constrictions of about 20 nm. The characterization of this device demonstrates an amazing field sensitivity (regarding its size) of δB < 1 µT. Even though the sensor was 25 times larger than the best micro-Hall sensor, it provided an excellent flux resolution in the order of δΦ ≈ 5 10^(−4) Φ0 and a similar magnetic moment resolution of δM ≈ 10^2 µB. Furthermore, the introduction of an ellipsoidal permalloy magnet (axes: 200 nm and 400 nm, thickness 30 nm) substantiates the suitability for the detection of minuscule, localized magnetic fields. The second part of the thesis deals with the peculiar transport properties of HgTe quantum wells. These rely on the linear contribution to the band structure inherent to the heterostructure. Therefore the system can be described by an effective Dirac Hamiltonian, whose Dirac mass is tunable by the variation of the quantum well thickness. By fabrication and characterization of a systematical series of substrates, a system with vanishing Dirac mass (zero energy gap) has been confirmed. This heterostructure therefore resembles graphene (a monolayer of graphite), with the difference of exhibiting only one valley in the energy dispersion of the Brillouin zone. Thus parasitical intervalley scattering cannot occur. The existence of this system has been proven by the agreement of theoretical predictions, based on widely accepted band structure calculations with the experiment (Landau level dispersion, conductivity). Furthermore, another particularity of the band structure - the transition from linear to parabolic character - has been illustrated by the widths of the plateaus in the quantum Hall effect. Finally, the transport of ”massive” Dirac fermions (with finite Dirac mass) is investigated. In particular the describing Dirac Hamiltonian induces weak localization effects depending on the Dirac mass. This mechanism has not been observed to date, and survives in higher temperatures compared to typical localization mechanisms.
Proton magnetic resonance imaging (MRI) has recently emerged as a clinical tool to image the lungs. This paper outlines the current technical aspects of MRI pulse sequences, radiofrequency (RF) coils and MRI system requirements needed for imaging the pulmonary parenchyma and vasculature. Lung MRI techniques are presented as a “technical toolkit”, from which MR protocols will be composed in the subsequent papers for comprehensive imaging of lung disease and function (parts 2 and 3). This paper is pitched at MR scientists, technicians and radiologists who are interested in understanding and establishing lung MRI methods. Images from a 1.5 T scanner are used for illustration of the sequences and methods that are highlighted.
Main Messages
• Outline of the hardware and pulse sequence requirements for proton lung MRI
• Overview of pulse sequences for lung parenchyma, vascular and functional imaging with protons
• Demonstration of the pulse-sequence building blocks for clinical lung MRI protocols