TY - JOUR A1 - Opolka, Alexander A1 - Müller, Dominik A1 - Fella, Christian A1 - Balles, Andreas A1 - Mohr, Jürgen A1 - Last, Arndt T1 - Multi-lens array full-field X-ray microscopy JF - Applied Sciences N2 - X-ray full-field microscopy at laboratory sources for photon energies above 10 keV suffers from either long exposure times or low resolution. The photon flux is mainly limited by the objectives used, having a limited numerical aperture NA. We show that this can be overcome by making use of the cone-beam illumination of laboratory sources by imaging the same field of view (FoV) several times under slightly different angles using an array of X-ray lenses. Using this technique, the exposure time can be reduced drastically without any loss in terms of resolution. A proof-of-principle is given using an existing laboratory metal-jet source at the 9.25 keV Ga K\(_α\)-line and compared to a ray-tracing simulation of the setup. KW - X-ray microscopy KW - full-field microscopy KW - compound refractive X-ray lenses KW - CRLs Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-244974 SN - 2076-3417 VL - 11 IS - 16 ER - TY - JOUR A1 - Tufarelli, Tommaso A1 - Friedrich, Daniel A1 - Groß, Heiko A1 - Hamm, Joachim A1 - Hess, Ortwin A1 - Hecht, Bert T1 - Single quantum emitter Dicke enhancement JF - Physical Review Research N2 - Coupling N identical emitters to the same field mode is a well-established method to enhance light-matter interaction. However, the resulting √N boost of the coupling strength comes at the cost of a “linearized” (effectively semiclassical) dynamics. Here, we instead demonstrate a new approach for enhancing the coupling constant of a single quantum emitter, while retaining the nonlinear character of the light-matter interaction. We consider a single quantum emitter with N nearly degenerate transitions that are collectively coupled to the same field mode. We show that in such conditions an effective Jaynes-Cummings model emerges with a boosted coupling constant of order √N. The validity and consequences of our general conclusions are analytically demonstrated for the instructive case N=2. We further observe that our system can closely match the spectral line shapes and photon autocorrelation functions typical of Jaynes-Cummings physics, proving that quantum optical nonlinearities are retained. Our findings match up very well with recent broadband plasmonic nanoresonator strong-coupling experiments and will, therefore, facilitate the control and detection of single-photon nonlinearities at ambient conditions. KW - Cavity quantum electrodynamics KW - Collective effects in quantum optics KW - Quantum optics with artificial atoms KW - Superradiance & subradiance Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-261459 VL - 3 ER - TY - JOUR A1 - Weissenseel, Sebastian A1 - Gottscholl, Andreas A1 - Bönnighausen, Rebecca A1 - Dyakonov, Vladimir A1 - Sperlich, Andreas T1 - Long-lived spin-polarized intermolecular exciplex states in thermally activated delayed fluorescence-based organic light-emitting diodes JF - Science Advances N2 - Spin-spin interactions in organic light-emitting diodes (OLEDs) based on thermally activated delayed fluorescence (TADF) are pivotal because radiative recombination is largely determined by triplet-to-singlet conversion, also called reverse intersystem crossing (RISC). To explore the underlying process, we apply a spin-resonance spectral hole-burning technique to probe electroluminescence. We find that the triplet exciplex states in OLEDs are highly spin-polarized and show that these states can be decoupled from the heterogeneous nuclear environment as a source of spin dephasing and can even be coherently manipulated on a spin-spin relaxation time scale T-2* of 30 ns. Crucially, we obtain the characteristic triplet exciplex spin-lattice relaxation time T-1 in the range of 50 mu s, which far exceeds the RISC time. We conclude that slow spin relaxation rather than RISC is an efficiency-limiting step for intermolecular donor:acceptor systems. Finding TADF emitters with faster spin relaxation will benefit this type of TADF OLEDs. KW - detected magnetic-resonance KW - population oscillations KW - polaron delocalization KW - charge separation KW - hole KW - phosphorescence KW - singlet KW - absorption KW - tryptophan KW - emission Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-265508 VL - 7 IS - 47 ER - TY - JOUR A1 - Graetz, Jonas T1 - Simulation study towards quantitative X-ray and neutron tensor tomography regarding the validity of linear approximations of dark-field anisotropy JF - Scientific Reports N2 - Tensor tomography is fundamentally based on the assumption of a both anisotropic and linear contrast mechanism. While the X-ray or neutron dark-field contrast obtained with Talbot(-Lau) interferometers features the required anisotropy, a preceding detailed study of dark-field signal origination however found its specific orientation dependence to be a non-linear function of the underlying anisotropic mass distribution and its orientation, especially challenging the common assumption that dark-field signals are describable by a function over the unit sphere. Here, two approximative linear tensor models with reduced orientation dependence are investigated in a simulation study with regard to their applicability to grating based X-ray or neutron dark-field tensor tomography. By systematically simulating and reconstructing a large sample of isolated volume elements covering the full range of feasible anisotropies and orientations, direct correspondences are drawn between the respective tensors characterizing the physically based dark-field model used for signal synthesization and the mathematically motivated simplified models used for reconstruction. The anisotropy of freely rotating volume elements is thereby confirmed to be, for practical reconstruction purposes, approximable both as a function of the optical axis' orientation or as a function of the interferometer's grating orientation. The eigenvalues of the surrogate models' tensors are found to exhibit fuzzy, yet almost linear relations to those of the synthesization model. Dominant orientations are found to be recoverable with a margin of error on the order of magnitude of 1 degrees. Although the input data must adequately address the full orientation dependence of dark-field anisotropy, the present results clearly support the general feasibility of quantitative X-ray dark-field tensor tomography within an inherent yet acceptable statistical margin of uncertainty. KW - applied mathematics KW - applied physics KW - imaging techniques Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-261844 VL - 11 ER - TY - JOUR A1 - Gottscholl, Andreas A1 - Diez, Matthias A1 - Soltamov, Victor A1 - Kasper, Christian A1 - Krauße, Dominik A1 - Sperlich, Andreas A1 - Kianinia, Mehran A1 - Bradac, Carlo A1 - Aharonovich, Igor A1 - Dyakonov, Vladimir T1 - Spin defects in hBN as promising temperature, pressure and magnetic field quantum sensors JF - Nature Communications N2 - Spin defects in solid-state materials are strong candidate systems for quantum information technology and sensing applications. Here we explore in details the recently discovered negatively charged boron vacancies (V\(_B\)\(^−\)) in hexagonal boron nitride (hBN) and demonstrate their use as atomic scale sensors for temperature, magnetic fields and externally applied pressure. These applications are possible due to the high-spin triplet ground state and bright spin-dependent photoluminescence of the V\(_B\)\(^−\). Specifically, we find that the frequency shift in optically detected magnetic resonance measurements is not only sensitive to static magnetic fields, but also to temperature and pressure changes which we relate to crystal lattice parameters. We show that spin-rich hBN films are potentially applicable as intrinsic sensors in heterostructures made of functionalized 2D materials. KW - electronic properties and materials KW - qubits Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-261581 VL - 12 IS - 1 ER - TY - JOUR A1 - Ünzelmann, M. A1 - Bentmann, H. A1 - Figgemeier, T. A1 - Eck, P. A1 - Neu, J. N. A1 - Geldiyev, B. A1 - Diekmann, F. A1 - Rohlf, S. A1 - Buck, J. A1 - Hoesch, M. A1 - Kalläne, M. A1 - Rossnagel, K. A1 - Thomale, R. A1 - Siegrist, T. A1 - Sangiovanni, G. A1 - Di Sante, D. A1 - Reinert, F. T1 - Momentum-space signatures of Berry flux monopoles in the Weyl semimetal TaAs JF - Nature Communications N2 - Since the early days of Dirac flux quantization, magnetic monopoles have been sought after as a potential corollary of quantized electric charge. As opposed to magnetic monopoles embedded into the theory of electromagnetism, Weyl semimetals (WSM) exhibit Berry flux monopoles in reciprocal parameter space. As a function of crystal momentum, such monopoles locate at the crossing point of spin-polarized bands forming the Weyl cone. Here, we report momentum-resolved spectroscopic signatures of Berry flux monopoles in TaAs as a paradigmatic WSM. We carried out angle-resolved photoelectron spectroscopy at bulk-sensitive soft X-ray energies (SX-ARPES) combined with photoelectron spin detection and circular dichroism. The experiments reveal large spin- and orbital-angular-momentum (SAM and OAM) polarizations of the Weyl-fermion states, resulting from the broken crystalline inversion symmetry in TaAs. Supported by first-principles calculations, our measurements image signatures of a topologically non-trivial winding of the OAM at the Weyl nodes and unveil a chirality-dependent SAM of the Weyl bands. Our results provide directly bulk-sensitive spectroscopic support for the non-trivial band topology in the WSM TaAs, promising to have profound implications for the study of quantum-geometric effects in solids. Weyl semimetals exhibit Berry flux monopoles in momentum-space, but direct experimental evidence has remained elusive. Here, the authors reveal topologically non-trivial winding of the orbital-angular-momentum at the Weyl nodes and a chirality-dependent spin-angular-momentum of the Weyl bands, as a direct signature of the Berry flux monopoles in TaAs. KW - electronic properties and materials KW - topological insulators Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-260719 VL - 12 IS - 1 ER - TY - JOUR A1 - Winter, Patrick M. A1 - Andelovic, Kristina A1 - Kampf, Thomas A1 - Hansmann, Jan A1 - Jakob, Peter Michael A1 - Bauer, Wolfgang Rudolf A1 - Zernecke, Alma A1 - Herold, Volker T1 - Simultaneous measurements of 3D wall shear stress and pulse wave velocity in the murine aortic arch JF - Journal of Cardiovascular Magnetic Resonance N2 - Purpose Wall shear stress (WSS) and pulse wave velocity (PWV) are important parameters to characterize blood flow in the vessel wall. Their quantification with flow-sensitive phase-contrast (PC) cardiovascular magnetic resonance (CMR), however, is time-consuming. Furthermore, the measurement of WSS requires high spatial resolution, whereas high temporal resolution is necessary for PWV measurements. For these reasons, PWV and WSS are challenging to measure in one CMR session, making it difficult to directly compare these parameters. By using a retrospective approach with a flexible reconstruction framework, we here aimed to simultaneously assess both PWV and WSS in the murine aortic arch from the same 4D flow measurement. Methods Flow was measured in the aortic arch of 18-week-old wildtype (n = 5) and ApoE\(^{−/−}\) mice (n = 5) with a self-navigated radial 4D-PC-CMR sequence. Retrospective data analysis was used to reconstruct the same dataset either at low spatial and high temporal resolution (PWV analysis) or high spatial and low temporal resolution (WSS analysis). To assess WSS, the aortic lumen was labeled by semi-automatically segmenting the reconstruction with high spatial resolution. WSS was determined from the spatial velocity gradients at the lumen surface. For calculation of the PWV, segmentation data was interpolated along the temporal dimension. Subsequently, PWV was quantified from the through-plane flow data using the multiple-points transit-time method. Reconstructions with varying frame rates and spatial resolutions were performed to investigate the influence of spatiotemporal resolution on the PWV and WSS quantification. Results 4D flow measurements were conducted in an acquisition time of only 35 min. Increased peak flow and peak WSS values and lower errors in PWV estimation were observed in the reconstructions with high temporal resolution. Aortic PWV was significantly increased in ApoE\(^{−/−}\) mice compared to the control group (1.7 ± 0.2 versus 2.6 ± 0.2 m/s, p < 0.001). Mean WSS magnitude values averaged over the aortic arch were (1.17 ± 0.07) N/m\(^2\) in wildtype mice and (1.27 ± 0.10) N/m\(^2\) in ApoE\(^{−/−}\) mice. Conclusion The post processing algorithm using the flexible reconstruction framework developed in this study permitted quantification of global PWV and 3D-WSS in a single acquisition. The possibility to assess both parameters in only 35 min will markedly improve the analyses and information content of in vivo measurements. KW - 4D flow KW - pulse wave velocity KW - wall shear stress KW - radial KW - self-navigation KW - mouse KW - aortic arch KW - atherosclerosis KW - mice KW - flow KW - plaque KW - CMR KW - quantification KW - microscopy Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-259152 VL - 23 IS - 1 ER - TY - JOUR A1 - Kiermasch, David A1 - Fischer, Mathias A1 - Gil-Escrig, Lidón A1 - Baumann, Andreas A1 - Bolink, Henk J. A1 - Dyakonov, Vladimir A1 - Tvingstedt, Kristofer T1 - Reduced Recombination Losses in Evaporated Perovskite Solar Cells by Postfabrication Treatment JF - Solar RRL N2 - The photovoltaic perovskite research community has now developed a large set of tools and techniques to improve the power conversion efficiency (PCE). One such arcane trick is to allow the finished devices to dwell in time, and the PCE often improves. Herein, a mild postannealing procedure is implemented on coevaporated perovskite solar cells confirming a substantial PCE improvement, mainly attributed to an increased open-circuit voltage (V\(_{OC}\)). From a V\(_{OC}\) of around 1.11 V directly after preparation, the voltage improves to more than 1.18 V by temporal and thermal annealing. To clarify the origin of this annealing effect, an in-depth device experimental and simulation characterization is conducted. A simultaneous reduction of the dark saturation current, the ideality factor (n\(_{id}\)), and the leakage current is revealed, signifying a substantial impact of the postannealing procedure on recombination losses. To investigate the carrier dynamics in more detail, a set of transient optoelectrical methods is first evaluated, ascertaining that the bulk carrier lifetime is increased with device annealing. Second, a drift-diffusion simulation is used, confirming that the beneficial effect of the annealing has its origin in effective bulk trap passivation that accordingly leads to a reduction of Shockley–Read–Hall recombination rates. KW - defects KW - heating KW - lifetimes KW - passivation KW - perovskite solar cells KW - recombination KW - Shockley–Read–Hall Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-258003 VL - 5 IS - 11 ER - TY - JOUR A1 - Andelovic, Kristina A1 - Winter, Patrick A1 - Kampf, Thomas A1 - Xu, Anton A1 - Jakob, Peter Michael A1 - Herold, Volker A1 - Bauer, Wolfgang Rudolf A1 - Zernecke, Alma T1 - 2D Projection Maps of WSS and OSI Reveal Distinct Spatiotemporal Changes in Hemodynamics in the Murine Aorta during Ageing and Atherosclerosis JF - Biomedicines N2 - Growth, ageing and atherosclerotic plaque development alter the biomechanical forces acting on the vessel wall. However, monitoring the detailed local changes in wall shear stress (WSS) at distinct sites of the murine aortic arch over time has been challenging. Here, we studied the temporal and spatial changes in flow, WSS, oscillatory shear index (OSI) and elastic properties of healthy wildtype (WT, n = 5) and atherosclerotic apolipoprotein E-deficient (Apoe\(^{−/−}\), n = 6) mice during ageing and atherosclerosis using high-resolution 4D flow magnetic resonance imaging (MRI). Spatially resolved 2D projection maps of WSS and OSI of the complete aortic arch were generated, allowing the pixel-wise statistical analysis of inter- and intragroup hemodynamic changes over time and local correlations between WSS, pulse wave velocity (PWV), plaque and vessel wall characteristics. The study revealed converse differences of local hemodynamic profiles in healthy WT and atherosclerotic Apoe\(^{−/−}\) mice, and we identified the circumferential WSS as potential marker of plaque size and composition in advanced atherosclerosis and the radial strain as a potential marker for vascular elasticity. Two-dimensional (2D) projection maps of WSS and OSI, including statistical analysis provide a powerful tool to monitor local aortic hemodynamics during ageing and atherosclerosis. The correlation of spatially resolved hemodynamics and plaque characteristics could significantly improve our understanding of the impact of hemodynamics on atherosclerosis, which may be key to understand plaque progression towards vulnerability. KW - atherosclerosis KW - mouse KW - 4D flow MRI KW - aortic arch KW - flow dynamics KW - WSS KW - mapping KW - PWV KW - plaque characteristics Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-252164 SN - 2227-9059 VL - 9 IS - 12 ER - TY - JOUR A1 - Beierlein, J. A1 - Egorov, O. A. A1 - Harder, T. H. A1 - Gagel, P. A1 - Emmerling, M. A1 - Schneider, C. A1 - Höfling, S. A1 - Peschel, U. A1 - Klembt, S. T1 - Bloch Oscillations of Hybrid Light‐Matter Particles in a Waveguide Array JF - Advanced Optical Materials N2 - Bloch oscillations are a phenomenon well known from quantum mechanics where electrons in a lattice experience an oscillatory motion in the presence of an electric field gradient. Here, the authors report on Bloch oscillations of hybrid light−matter particles, called exciton‐polaritons (polaritons), being confined in an array of coupled microcavity waveguides. To this end, the waveguide widths and their mutual couplings are carefully designed such that a constant energy gradient is induced perpendicular to the direction of motion of the propagating polaritons. This technique allows us to directly observe and study Bloch oscillations in real‐ and momentum‐space. Furthermore, the experimental findings are supported by numerical simulations based on a modified Gross–Pitaevskii approach. This work provides an important transfer of basic concepts of quantum mechanics to integrated solid state devices, using quantum fluids of light. KW - Bloch oscillations KW - exciton‐polaritons KW - polariton condensation KW - waveguides Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-239814 VL - 9 IS - 13 ER - TY - JOUR A1 - Wroński, Piotr Andrzej A1 - Wyborski, Paweł A1 - Musiał, Anna A1 - Podemski, Paweł A1 - Sęk, Grzegorz A1 - Höfling, Sven A1 - Jabeen, Fauzia T1 - Metamorphic Buffer Layer Platform for 1550 nm Single-Photon Sources Grown by MBE on (100) GaAs Substrate JF - Materials N2 - We demonstrate single-photon emission with a low probability of multiphoton events of 5% in the C-band of telecommunication spectral range of standard silica fibers from molecular beam epitaxy grown (100)-GaAs-based structure with InAs quantum dots (QDs) on a metamorphic buffer layer. For this purpose, we propose and implement graded In content digitally alloyed InGaAs metamorphic buffer layer with maximal In content of 42% and GaAs/AlAs distributed Bragg reflector underneath to enhance the extraction efficiency of QD emission. The fundamental limit of the emission rate for the investigated structures is 0.5 GHz based on an emission lifetime of 1.95 ns determined from time-resolved photoluminescence. We prove the relevance of a proposed technology platform for the realization of non-classical light sources in the context of fiber-based quantum communication applications. KW - single-photon source KW - quantum dots KW - telecommunication spectral range KW - metamorphic buffer layer Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-246145 SN - 1996-1944 VL - 14 IS - 18 ER - TY - JOUR A1 - Müller, Dominik A1 - Graetz, Jonas A1 - Balles, Andreas A1 - Stier, Simon A1 - Hanke, Randolf A1 - Fella, Christian T1 - Laboratory-Based Nano-Computed Tomography and Examples of Its Application in the Field of Materials Research JF - Crystals N2 - In a comprehensive study, we demonstrate the performance and typical application scenarios for laboratory-based nano-computed tomography in materials research on various samples. Specifically, we focus on a projection magnification system with a nano focus source. The imaging resolution is quantified with common 2D test structures and validated in 3D applications by means of the Fourier Shell Correlation. As representative application examples from nowadays material research, we show metallization processes in multilayer integrated circuits, aging in lithium battery electrodes, and volumetric of metallic sub-micrometer fillers of composites. Thus, the laboratory system provides the unique possibility to image non-destructively structures in the range of 170–190 nanometers, even for high-density materials. KW - nano CT KW - laboratory KW - X-ray KW - 3D reconstruction KW - instrumentation KW - integrated circuits KW - nondestructive testing KW - 3D X-ray microscopy Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-241048 SN - 2073-4352 VL - 11 IS - 6 ER - TY - THES A1 - Scheuermann, Julian T1 - Interbandkaskadenlaser für Anwendungen in der Absorptionsspektroskopie T1 - Interband cascade lasers for applications in absorption spectroscopy N2 - Das Ziel dieser Arbeit war die Entwicklung und Weiterentwicklung von Laserlichtquellen basierend auf der Interbandkaskadentechnologie in einem Wellenlängenbereich von ca. 3 bis 6 µm. Der Fokus lag dabei auf der Entwicklung von Kantenemitter-Halbleiterlasern, welche bei verschiedensten Emissionswellenlängen erfolgreich hergestellt werden konnten. Dabei wurde auf jeweilige Herausforderungen eingegangen, welche entweder durch die Herstellung selbst oder der anwendungstechnischen Zielsetzung bedingt war. Im Rahmen dieser Arbeit wurden verschiedene, spektral einzelmodige Halbleiterlaser im angesprochenen Wellenlängenbereich entwickelt und hergestellt. Basierend auf dem jeweiligen Epitaxiematerial und der angestrebten Emissionswellenlänge wurden Simulationen der optischen Lasermode durchgeführt und die grundlegenden für die Herstellung notwendigen Parameter bestimmt und experimentell umgesetzt. Des Weiteren wurden die verwendeten Verfahren für den jeweiligen Herstellungsprozess angepasst und optimiert. Das umfasst die in den ersten Kapiteln beschriebenen Schritte wie optische Lithografie, Elektronenstrahllithografie, reaktives Trockenätzen und verschiedene Arten der Materialdeposition. Mit einer Emissionswellenlänge von 2,8 µm wurde beispielsweise der bislang kurzwelligste bei Raumtemperatur im Dauerstrichbetrieb betriebene einzelmodige Interbandkaskadenlaser hergestellt. Dessen Leistungsmerkmale sind mit Diodenlasern im entsprechenden Emissionsbereich vergleichbar. Somit ergänzt die Interbandkaskadentechnologie bestehende Technologien nahtlos und es ist eine lückenlose Wellenlängenabdeckung bis in den mittleren Infrarotbereich möglich. Je nach Herstellungsprozess wurde außerdem auf die verteilte Rückkopplung eingegangen und die Leistungsfähigkeit des verwendeten Metallgitterkonzeptes anhand von Messungen an spektral einzelmodigen Bauteile aufgezeigt. Es wurden aber auch die je nach Zielsetzung unterschiedlichen Herausforderungen aufgezeigt und diskutiert. Für eine Anwendung wurden spezielle Laserchips mit zwei einzelmodigen Emissionswellenlängen bei 3928 nm und 4009 nm entwickelt. Die beiden Wellenlängen sind für die Detektion von Schwefeldioxid und Schwefelwasserstoff geeignet, welche zur Überwachung und Optimierung der Schwefelgewinnung durch das Claus-Verfahren notwendig sind. Bei der Umsetzung wurden auf einzelnen Chips zwei Laseremitter in einem Abstand von 70 µm platziert und mit je einem Metallgitter versehen. Das verwendete Epitaxiematerial war so konzipiert, dass es optimal für beide Zielwellenlängen verwendet werden kann. Die geforderten Eigenschaften wurden erfüllt und die Bauteile konnten erfolgreich hergestellt werden. Die Emissionseigenschaften und das spektrale Verhalten wurde bei beiden Zielwellenlängen bestimmt. Einzeln betrachtet erfüllen beide Emitter die notwendigen Eigenschaften um für spektroskopische Anwendungen eingesetzt werden zu können. Ergänzend wurde zum einen das Abstimmverhalten der Emissionswellenlänge in Abhängigkeit der Modulationsfrequenz des Betriebsstromes untersucht und zusätzlich die thermische Abhängigkeit der Betriebsparameter beider Kanäle zueinander bestimmt. Diese Abhängigkeit ist für eine simultane Messung mit beiden Kanälen notwendig. Das Konzept mit mehreren Stegwellenleitern pro Laserchip wurde in einem weiteren Fall noch stärker ausgearbeitet. Denn je nach Komplexität eines Gasgemisches sind zur Bestimmung der einzelnen Komponenten mehr Messpunkte bzw. Wellenlängen notwendig. Im zweiten Fall ist die Analyse der Kohlenwasserstoffe Methan, Ethan, Propan, Butan, Iso-Butan, Pentan und Iso-Pentan von Interesse, welche als Hauptbestandteile von Erdgas z.B. in Erdgasaufbereitungsanlagen oder zur Bestimmung des Heizwertes analysiert werden müssen. Die genannten Kohlenwasserstoffe zeigen ein starkes Absorptionsverhalten im Wellenlängenbereich von 3,3 bis 3,5 µm. Auf dem entsprechend angepassten Interbandkaskadenmaterial wurden Bauteile mit neun Wellenleitern pro Laserchip hergestellt. Mithilfe der neun einzelmodigen Emissionskanäle konnte ein Bereich von bis zu 190 nm (21 meV, 167 cm-1) adressiert werden. Außerdem wurde der sich mit zunehmender Wellenlänge ändernde Schichtaufbau und dessen Einfluss auf die Bauteileigenschaften diskutiert. Die Leistungsdaten der langwelligsten Epitaxie waren im Vergleich deutlich schwächer. Um diesen Nachteil zu kompensieren, wurde eine spezielle Wellenleitergeometrie mit doppeltem Steg genutzt. Die Eigenschaften des Konzeptes wurden zuerst mittels Simulation untersucht und ein entsprechendes Herstellungsverfahren entwickelt. Mit der Simulation als Grundlage wurden die verschiedenen Prozessparameter über mehrere Prozessläufe iterativ optimiert und somit die Performance der Laser verbessert. Auch mit diesem Verfahren konnte ausreichende Kopplung an das Metallgitter erzielt werden. Abschließend wurden mit diesem Herstellungsverfahren einzelmodige Laser im Wellenlängenbereich von 5,9 bis über 6 Mikrometern realisiert. Diese Laser emittierten im Dauerstrichbetrieb bei einer maximalen Betriebstemperatur von -2 °C. Insgesamt wurde anhand der im Rahmen dieser Arbeit entwickelten Bauteilen und de ren Charakterisierung gezeigt, dass diese die Anforderungen von TLAS Anwendungen erfüllen. Jedoch konnte nur auf einen Teil der Möglichkeiten eingegangen werden, den die Interbandkaskadentechnologie bietet, denn die angesprochenen Einsatzgebiete stellen nur einzelne grundlegende Möglichkeiten dieser Technologie mit Schwerpunkt auf laserbasierte Lichtquellen dar. Zusammenfassend kann allerdings gesagt werden, dass sich die Interbandkaskadentechnologie etabliert hat. Gerade durch die gezeigten Leistungsdaten bei den Wellenlängen um 2,9 µm, 3,4 µm und 4,0 µm im Dauerstrichbetrieb bei Raumtemperatur wird ersichtlich, dass im Bereich der Sensorik die ICL Technologie in Bezug auf niedriger Strom- bzw. Leistungsaufnahme quasi konkurrenzlos ist. Sicherlich werden die Anwendungsgebiete in Zukunft noch vielfältiger. Denn es sind auf jeden Fall weitere Fortschritte in Richtung höherer Emissionswellenlängen, deutlich höherer Betriebstemperaturen, verbreiterte Emissionsbereiche oder gänzlich andere Bauteil Konzepte wie z.B. für Frequenzkämme bzw. Terahertz Anwendungen zu erwarten. Diese Entwicklung betrifft nicht nur den Einsatz als Lichtquelle, denn auch Interbandkaskadendetektoren bzw. Solarzellen wurden schon realisiert und werden weiterentwickelt. N2 - The work aimed for the development and enhancement of laser sources in the wavelength range from 3 to 6 μm, based on the interband cascade technology. The focus here was to work on edge-emitting semiconductor lasers, which were successfully realized at various wavelengths. In each chapter, the respective challenges were discussed, resulting either from the fabrication process itself or from the underlying application requirements. Within the scope of this work, various spectrally single-mode semiconductor lasers were developed and fabricated within the abovementioned wavelength range. Based on the particular epitaxial material and the targeted emission wavelength, optical mode simulations were performed, the basic processing parameters were derived and later experimentally realized. Furthermore, the methods for the respective manufacturing processes were varied and optimized. This includes processing steps like optical lithography, electron lithography, reactive ion etching and various kinds of material deposition, as described in the first chapters. For example, with an emission wavelength of 2.8 μm in continuous wave mode at room temperature, we demonstrated the shortest ICL DFB emission [SWE+15]. Its performance characteristics are comparable to conventional diode lasers in the same wavelength region. Therefore, the interband cascade technology supplements existing technologies and enables gap-free wavelength coverage up to the mid infrared region. Depending on the fabrication process, the distributed feedback and the efficiency of the used metal grating approach was shown by the demonstration of various spectrally singe mode devices and their performance figures. The various challenges were highlighted in terms of their individual requirements. Customized laser chips with two single-mode emission wavelengths at 3928 nm and 4009 nm were developed for one application [SWB+17]. Both wavelengths are useful for the detection of sulfur oxide and hydrogen sulfide within the Claus process, allowing monitoring and optimization when the concentration levels of these gases are known. Both emitters were realized on single chips, with a distance of 70 μm between each other and each ridge was provided with an individual metal grating. The underlying epitaxial material was designed that it could be optimally used for both target wavelengths. Ultimately, the requirements were met and the devices were fabricated successfully. The performance figures and the spectral behavior were determined at both target wavelengths. Individually, both emitters are capable of being used in spectroscopic applications. In addition, the tuning rate of the emission wavelength depending on the current modulation frequency and the thermal crosstalk between both emitters were investigated. Knowledge of the thermal crosstalk is of interest, when both emitters are used simultaneously. The concept of multiple ridge waveguides per laser chip was further elaborated in another case. Depending on the complexity of the gas mixture, more measurement points/wavelengths are required, to determine the individual components. In a second approach, mixtures of hydrocarbons such as methane, ethane, propane, butane, isobutene, pentane and isopentane are of interest. These main components of natural gas are tracked in natural gas processing plants, for example, or used to determine the calorific value. These hydrocarbons show strong absorption features in the 3.3 to 3.5 μm wavelength range. Devices with nine emitters per chip were fabricated on the appropriately adjusted epitaxial material. These nine single mode emission channels were able to cover a range of 190 nm (21 meV, 167 cm-1). In addition, the changes of the epitaxial structure with respect to increasing emission wavelength and their influence on the device behavior are discussed. The performance data of the longest wavelength epitaxy were significantly weaker in comparison. To compensate for that drawback, a special waveguide design with a double ridge structure was used. The properties of this concept were first investigated by means of simulation and an appropriate processing route was determined. Using the simulation as a basis, the design parameters were iteratively optimized over multiple fabrication runs and the performance of the lasers was improved. With this approach, sufficient coupling of the laser mode to the metal grating was also realized. Finally, single-mode lasers in the wavelength range from 5.9 to over 6 μm were realized using the double ridge fabrication technique. These lasers were operated in continuous wave mode at a maximum operation temperature of -2 °C. Overall, the devices developed within this work and their characteristics show, that the requirements for TLAS applications are met. However, only a part of the possibilities of the interband cascade technology could be addressed, since the discussed application areas are focused on laser-based light sources. In summary, interband cascade technology has established itself. In particular, the performance data at 2.9 μm, 3.4 μm and 4.0 μm in continuous wave operation at room temperature show that the ICL technology is almost unrivaled in terms of low current/power consumption. Certainly, the areas of application will be even more diverse in the future. Further progress in terms of higher emission wavelengths, higher operation temperatures, and broadband wavelength emission can be expected. Other concepts such as frequency combs [BFS+18, SWP+17] or terahertz [VM99] emission can also be realized. This development does not only concern the light sources, also interband cascade detectors or solar cells [YTK+10, HTR+13, TK15, HLL+18, LLL+17a, LLL+17b] have already been realized and are being further developed. KW - Halbleiterlaser KW - Interbandkaskadenlaser KW - Absorptionsspektroskopie Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-251797 ER - TY - THES A1 - Leisegang, Markus T1 - Eine neue Methode zur Detektion ballistischen Transports im Rastertunnelmikroskop: Die Molekulare Nanosonde T1 - A new method for detecting ballistic transport in the scanning tunneling microscope: The molecular nanoprobe N2 - Verlustarmer Ladungsträgertransport ist für die Realisierung effizienter und kleiner elektronischer Bauteile von großem Interesse. Dies hilft entstehende Wärme zu minimieren und den Energieverbrauch gleichzeitig zu reduzieren. Einzelne Streuprozesse, die den Verlust bei Ladungsträgertransport bestimmen, laufen jedoch auf Längenskalen von Nano- bis Mikrometern ab. Um diese detailliert untersuchen zu können, bedarf es Messmethoden mit hoher zeitlicher oder örtlicher Auflösung. Für Letztere gibt es wenige etablierte Experimente, häufig basierend auf der Rastertunnelmikroskopie, welche jedoch verschiedenen Einschränkungen unterliegen. Um die Möglichkeiten der Detektion von Ladungsträgertransport auf Distanzen der mittleren freien Weglänge und damit im ballistischen Regime zu verbessern, wurde im Rahmen dieser Dissertation die Molekulare Nanosonde charakterisiert und etabliert. Diese Messmethode nutzt ein einzelnes Molekül als Detektor für Ladungsträger, welche mit der Sondenspitze des Rastertunnelmikroskops (RTM) wenige Nanometer entfernt vom Molekül in das untersuchte Substrat injiziert werden. Die hohe Auflösung des RTM in Kombination mit der geringen Ausdehnung des molekularen Detektors ermöglicht dabei atomare Kontrolle von Transportpfaden über wenige Nanometer. Der erste Teil dieser Arbeit widmet sich der Charakterisierung der Molekularen Nanosonde. Hierfür werden zunächst die elektronischen Eigenschaften dreier Phthalocyanine mittels Rastertunnelspektroskpie untersucht, welche im Folgenden zur Charakterisierung des Moleküls als Detektor Anwendung finden. Die anschließende Analyse der Potentiallandschaft der Tautomerisation von H2Pc und HPc zeigt, dass die NH- Streckschwinung einem effizienten Schaltprozess zu Grunde liegt. Darauf basierend wird der Einfluss der Umgebung anhand von einzelnen Adatomen sowie des Substrats selbst auf den molekularen Schalter analysiert. In beiden Fällen zeigt sich eine signifikante Änderung der Potentiallandschaft der Tautomerisation. Anschließend wird der Einfluss geometrischer Eigenschaften des Moleküls selbst untersucht, wobei sich eine Entkopplung vom Substrat auf Grund von dreidimensionalen tert-Butyl-Substituenten ergibt. Zusätzlich zeigt sich bei dem Vergleich von Naphthalocyanin zu Phthalocyanin der Einfluss lateraler Ausdehnung auf die Detektionsfläche, was einen nicht-punktförmigen Detektor bestätigt. Im letzten Abschnitt werden zwei Anwendungen der Molekularen Nanosonde präsentiert. Zunächst wird mit Phthalocyanin auf Ag(111) demonstriert, dass die Interferenz von ballistischen Ladungsträgern auf Distanzen von wenigen Nanometern mit dieser Technik detektierbar ist. Im zweiten Teil zeigt sich, dass der ballistische Transport auf einer Pd(110)-Oberfläche durch die anisotrope Reihenstruktur auf atomarer Skala moduliert wird. N2 - Low-loss charge carrier transport is of great interest for the realization of efficient and small electronic components. Improvements would minimize heat generation and reduce energy consumption at the same time. However, individual scattering processes that determine the loss in charge carrier transport occur on length scales from nanometers to micrometers. To study these in detail, measurement methods with high temporal or spatial resolution are required. For the latter, few established experiments exist, often based on scanning tunneling microscopy, which are however subject to various limitations. In order to improve the possibilities of detecting charge carrier transport at distances of the mean free path and thus in the ballistic regime, the molecular nanoprobe was characterized and established in this dissertation. This measurement technique uses a single molecule as a detector for charge carriers, which are injected into the substrate under investigation with the scanning tunneling microscope (STM) tip a few nanometers away from the molecule. The high resolution of the STM combined with the small size of the molecular detector allows atomic control of transport paths over a few nanometers. The first part of this work is devoted to the characterization of the molecular nanoprobe. For this purpose, the electronic properties of three phthalocyanines are first investigated by scanning tunneling spectroscopy, which will be applied in the following studies to characterize the molecular detector. The subsequent analysis of the potential landscape for tautomerization within H2Pc and HPc reveals that the N-H stretching mode underlies an efficient switching process. Based on these findings, the influence of the direct environment on the molecular switch is analyzed by means of individual adatoms as well as the substrate itself. In both cases, a significant change in the potential landscape of the tautomerization is shown. Subsequently, the influence of geometric properties of the molecule itself is investigated, revealing a decoupling from the substrate due to three-dimensional tert-butyl substituents. In addition, the comparison through naphthalocyanine to phthalocyanine reveals the influence of lateral expansion on the detection area, confirming a non-point molecular detector. In the last section, two applications of the molecular nanoprobe are presented. First, using phthalocyanine on Ag(111), it is demonstrated that the interference of ballistic charge carriers at distances of a few nanometers is detectable with this technique. In the second part, it is shown that the anisotropic Pd(110) surface structure leads to a strong modulation of the ballistic transport on the atomic scale. KW - Rastertunnelmikroskopie KW - Ladungstransport KW - Molekül KW - Nanosonde KW - Ballistischer Transport KW - Molekulare Sonde KW - Tautomerisation KW - Molekularer Schalter Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-250762 ER - TY - JOUR A1 - Bunzmann, Nikolai A1 - Krugmann, Benjamin A1 - Weissenseel, Sebastian A1 - Kudriashova, Liudmila A1 - Ivaniuk, Khrystyna A1 - Stakhira, Pavlo A1 - Cherpak, Vladyslav A1 - Chapran, Marian A1 - Grybauskaite‐Kaminskiene, Gintare A1 - Grazulevicius, Juozas Vidas A1 - Dyakonov, Vladimir A1 - Sperlich, Andreas T1 - Spin‐ and Voltage‐Dependent Emission from Intra‐ and Intermolecular TADF OLEDs JF - Advanced Electronic Materials N2 - Organic light emitting diodes (OLEDs) based on thermally activated delayed fluorescence (TADF) utilize molecular systems with a small energy splitting between singlet and triplet states. This can either be realized in intramolecular charge transfer states of molecules with near‐orthogonal donor and acceptor moieties or in intermolecular exciplex states formed between a suitable combination of individual donor and acceptor materials. Here, 4,4′‐(9H,9′H‐[3,3′‐bicarbazole]‐9,9′‐diyl)bis(3‐(trifluoromethyl) benzonitrile) (pCNBCzoCF\(_{3}\)) is investigated, which shows intramolecular TADF but can also form exciplex states in combination with 4,4′,4′′‐tris[phenyl(m‐tolyl)amino]triphenylamine (m‐MTDATA). Orange emitting exciplex‐based OLEDs additionally generate a sky‐blue emission from the intramolecular emitter with an intensity that can be voltage‐controlled. Electroluminescence detected magnetic resonance (ELDMR) is applied to study the thermally activated spin‐dependent triplet to singlet up‐conversion in operating devices. Thereby, intermediate excited states involved in OLED operation can be investigated and the corresponding activation energy for both, intra‐ and intermolecular based TADF can be derived. Furthermore, a lower estimate is given for the extent of the triplet wavefunction to be ≥ 1.2 nm. Photoluminescence detected magnetic resonance (PLDMR) reveals the population of molecular triplets in optically excited thin films. Overall, the findings allow to draw a comprehensive picture of the spin‐dependent emission from intra‐ and intermolecular TADF OLEDs. KW - color tuning KW - exciplexes KW - organic light emitting diodes KW - spin KW - triplets Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-224434 VL - 7 IS - 3 ER - TY - THES A1 - Elias dos Santos, Graciely T1 - Spin-Orbit Torques and Galvanomagnetic Effects Generated by the 3D Topological Insulator HgTe T1 - Spin-Orbit Torques und galvanomagnetische Effekte, erzeugt durch den 3D-topologischen Isolator HgTe N2 - In meiner Dissertation beschäftigte ich mich mit der Frage, ob der 3D topologische Isolator Quecksilbertellurid (3D TI HgTe) ein geeignetes Material für Spintronik-Anwendungen ist. Wir untersuchten Spin-Bahn-Drehmomente, die auf Elektronen beim Tunneln zwischen HgTe und einem angrenzenden Ferromagneten (Permalloy) einwirken. Zunächst setzten wir die Methode der Ferromagnetresonanz (SOT-FMR) für diese Untersuchungen ein. Im ersten Teil der Dissertation werden die Leser in die mathematische Beschreibung von Spin- Bahn-Drehmomenten in einem Hybridsystem bestehend aus topologischem Isolator (TI) und Ferromagnet (FM) eingeführt. Des Weiteren werden die Probenherstellung und der Messaufbau für SOT-FMR Messungen besprochen. Unsere SOT-FMR Messungen ergaben, dass bei tiefen Temperaturen (T = 4.2 K) die Normalkomponente (bezogen auf der TI-Oberfläche) des Drehmoments groß war. Bei Raumtemperatur konnten im Signal beide Komponenten (parallel und normal zur TI-Oberfläche) beobachtet werden. Aus der Symmetrie der Mixing-Spannung (Abbildungen 3.14 und 3.15) schlossen wir, dass 3D TI HgTe ein Spin-Bahn-Drehmoment auf das Elektronensystem des Permalloys überträgt. Unsere Untersuchungen zeigten darüber hinaus, dass die Effizienz dieser Übertragung mit der anderer vorhandener topologischen Isolatoren vergleichbar ist (siehe Abb. 3.17). Abschließend wurden parasitäre Effekte bei der Abschätzung des Spin-Bahn-Drehmoments bzw. andere Interpretationen des Messsignals und seiner Komponenten (z.B., Thermospannungen) ausführlich diskutiert. Obwohl die hier gezeigten Ergebnisse vermehrt darauf hinweisen, dass der 3D TI HgTe möglicherweise effizient für die Anwendung von Spin-Drehmomenten in angrezenden Ferromagneten ist [1], wird dem Leser weiderholt klargemacht, dass parasitäre Effekte eventuelle das korrekte Schreiben und Lesen der Information in Ferromagneten verunreignigt. Diese sollten auch bei der Interpretation von publizierten Resultaten besonders hohen Spin-Bahn-Drehmomentübertragungen in der Literatur berücksichtigt werden [1–3]. Die Nachteile der SOT-FMR-Messmethode führten zu einerWeiterentwicklung unseres Messkonzepts, bei dem der Ferromagnet durch eine Spin-Valve-Struktur ersetzt wurde. In dieser Messanordnung ist der Stromfluss durch den 3D TI im Gegensatz zu den vorangegangenen Messungen bekannt und die Widerstandsänderung der Spin-Valve-Struktur kann durch den GMR-Effekt ausgelesen werden. Die Ausrichtung der Magnetisierung des Ferromagneten in den SOT-FMR-Experimenten erforderte es, ein magnetisches Feld von bis zu 300 mT parallel zur TI-Oberfläche anzulegen. Motiviert durch diesen Umstand, untersuchten wir den Einfluss eines parallelen Magnetfelds auf den Magnetowiderstand in 3D TI HgTe. Die überraschenden Resultate dieser Messungen werden im zweiten Teil der Dissertation beschrieben. Obwohl nichtmagnetisches Quecksilbertellurid untersucht wurde, oszillierte der transversale Magnetowiderstand (Rxy) mit dem Winkel � zwischen der Magnetfeldrichtung (parallel zur Oberfläche) und der elektrischen Stromflussrichtung im topologischen Isolator. Dieser Effekt ist eine typische Eigenschaft von ferromagnetischen Materialien und wird planarer Hall-Effekt (PHE) genannt[4, 5]. Magnetowiderstands- (MR-)Oszillationen wurden ebenfalls sowohl im Längswiderstand (Rxx) und im transversalen Widerstand (Rxy) über einen weiten Bereich von magnetischen Feldstärken und Ladungsträgerdichten des topologischen Isolators beobachtet. Der PHE wurde bereits zuvor in einem anderen TI-Material (Bi2−xSbxTe3) beschrieben [6]. Als physikalischer Mechanismus wurde von den Autoren Elektronenstreuung an magnetisch polarisierten Streuzentren vorgeschlagen. Wir diskutierten sowohl diesen Erklärungsansatz als auch andere Theorievorschläge in der Literatur [7, 8] kritisch. In dieser Doktorarbeit haben wir versucht, der PHE des 3D TI HgTe durch die Asymmetrie in der Bandstruktur dieses Materials zu erklären. In k.p Bandstrukturrechnungen mit einer 6-Orbital-Basis zeigten wir, dass das Zwischenspiel von Rashba- und Dresselhaus-Spin-Bahn- Wechselwirkung mit dem magnetischen Feld parallel zur TI-Oberfläche zu einer Verformung der Fermikontur des Valenzbands von 3D TI-HgTe führt, welche ihrerseits eine Anisotropie des Leitfähigkeit bedingt. Die benötigten Magnetfeldstärken in diesem Modell waren mit bis zu 40 T jedoch etwa eine Größenordnung größer als jene in unseren Experimenten. Des Weiteren lieferte eine direkte Berechnung der Zustandsdichten für Bin k I und Bin ? I bisher keine klaren Resultate. Die komplizierte Abhängigkeit der Rashba-Spin-Bahn-Kopplung für p-leitendes HgTe [9] machte es außerdem schwierig, diesen Term in die Bandstrukturrechnung zu inkludieren. Trotz umfangreicher Bemühungen, den Ursprung der galvanomagnetischen Effekte im 3D TI HgTe zu verstehen, konnte in dieser Arbeit der Mechanismus des PHE und der MR-Oszillationen nicht eindeutig bestimmt werden. Es gelang jedoch, einige aus der Literatur bekannte Theorien für den PHE und die MR-Oszillationseffekte in topologischen Isolatoren auszuschließen. Die Herausforderung, eine vollständige theoretische Beschreibung zu entwickeln, die allen experimentellen Aspekten (PHE, Gatespannungsabhängigkeit und MR-Oszillationen) gerecht wird, bleibt weiter bestehen. Abschließend möchte die Autorin ihre Hoffnung ausdrücken, den Lesern die Komplexität der Fragestellung näher gebracht zu haben und sie in die Kunst elektrischer Messungen an topologischen Isolatoren bei angelegtem parallelem Magnetfeld initiiert zu haben. N2 - Nature shows us only the tail of the lion. But I have no doubt that the lion belongs with it even if he cannot reveal himself all at once. Albert Einstein In my dissertation, I addressed the question of whether the 3D topological insulator mercury telluride (3D TI HgTe) is a suitable material for spintronics applications. This question was addressed by investigating the SOTs generated by the 3D TI HgTe in an adjacent ferromagnet (Permalloy) by using the ferromagnetic resonance technique (SOT-FMR). In the first part of the dissertation, the reader was introduced to the mathematical description of the SOTs of a hybrid system consisting of a topological insulator (TI) and a ferromagnet (FM). Furthermore, the sample preparation and the measurement setup for the SOT-FMR measurements were discussed. Our SOT-FMR measurements showed that at low temperatures (T = 4.2 K) the out-of-plane component of the torque is dominant. At room temperature, both in-plane and out-of-plane components of the torque could be observed. From the symmetry of the mixing voltage (Figs. 3.14 and 3.15) we could conclude that the 3D TI HgTe may be efficient for the generation of spin torques in the permalloy [1]. The investigations reported here showed that the SOT efficiencies generated by the 3D TI HgTe are comparable with other existent topological insulators (see Fig. 3.17). We also discussed in detail the parasitic effects (such as thermovoltages) that can contribute to the correct interpretation of the spin torque efficiencies. Although the results reported here provide several indications that the 3D TI HgTe might be efficient in exerting spin-torques in adjacent ferromagnets [2], the reader was repeatedly made aware that parasitic effects might contaminate the correct writing and reading of the information in the ferromagnet. These effects should be taken into consideration when interpreting results in the published literature claiming high spin-orbit torque efficiencies [2–4]. The drawbacks of the SOT-FMR measurement method led to a further development of our measurement concept, in which the ferromagnet on top of the 3D TI HgTe was replaced by a spin-valve structure. In contrast with our measurements, in this measurement setup, the current flowing through the HgTe is known and changes in the spin-valve resistance can be read via the GMR effect. Moreover, the SOT-FMR experiments required the application of an in-plane magnetic field up to 300 mT to define the magnetization direction in the ferromagnet. Motivated by this fact, we investigated the influence of an in-plane magnetic field in the magnetoresistance of the 3D TI HgTe. The surprising results of these measurements are described in the second part of the dissertation. Although the TI studied here is non-magnetic, its transversal MR (Rxy) showed an oscillating behavior that depended on the angle between the in-plane magnetic field and the electrical current. This effect is a typical property of ferromagnetic materials and is called planar Hall effect (PHE) [5, 6]. Moreover, it was also shown that the PHE amplitude (Rxy) and the longitudinal resistance (Rxx) oscillate as a function of the in-plane magnetic field amplitude for a wide range of carrier densities of the topological insulator. The PHE was already described in another TI material (Bi2−xSbxTe3) [7]. The authors suggested as a possible mechanism the scattering of the electron off impurities that are polarized by an in-plane magnetic field. We critically discussed this and other theoretical proposed mechanisms existent in the literature [8, 9]. In this thesis, we attempted to explain the origin of the PHE in the 3D TI HgTe by anisotropies in the band structure of this material. The k.p calculations based on 6-orbitals were able to demonstrate that an interplay between Rashba, Dresselhaus, and in-plane magnetic field deforms the Fermi contours of the camel back band of the 3D TI HgTe, which could lead to anisotropies in its conductivity. However, the magnetic fields needed to experimentally observe this effect are as high as 40 T, i.e., one order of magnitude higher than reported in our experiments. Additionally, calculations of the DoS to assess if there is a difference in the states for Bin parallel and Bin perpendicular to the current were, so far, inconclusive. Moreover, the complicated dependence of Rashba in the p-conducting regime of HgTe [10] makes it not straightforward the inclusion of this term in the band structure calculations. Despite the extensive efforts to understand the origin of the galvanomagnetic effects in the 3D TI HgTe, we could not determine a clear mechanism for the origin of the PHE and the MR oscillations studied in this thesis. However, our work clarifies and excludes a few mechanisms reported in the literature as the origin of these effects in the 3D TI HgTe. The major challenge, which still needs to be overcome, is to find a model that simultaneously explains the PHE, the gate dependence, and the oscillations in the magnetoresistance of the 3D TI HgTe as a function of the in-plane magnetic field. To conclude, the author would like to express her hope to have brought the reader closer to the complexity of the questions addressed in this thesis and to have initiated them into the art of properly conducting electrical transport measurements on topological insulators with in-plane magnetic fields. KW - Electrical transport KW - Topologischer Isolator KW - Spintronics KW - Topological Insulators KW - Spin-Orbit-Torque Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-247971 ER - TY - THES A1 - Sochor, Benedikt T1 - Aggregation behavior of Pluronic P123 in bulk solution and under confinement at elevated temperatures near its cloud point T1 - Aggregationsverhalten von Pluronic P123 in Lösung und an Grenzflächen bei hohen Temperaturen nahe des Trübungspunktes N2 - 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. N2 - Ziel dieser Dissertation ist die Untersuchung des Form-Phasendiagrams des Dreiblock-Co- polymers Pluronic P123 mit dem besonderen Fokus auf dessen Phasenverhalten bei hohen Temperaturen. P123 besteht aus Polyethylen- und Polypropylenoxid-Blöcken und zeigt in wässriger Lösung vielfältige, temperaturabhängige Mizellformen oder sogar Flüssigkristallphasen. Neben den bereits intensiv untersuchten sphärischen Aggregaten bei mittleren Temperaturen, werden die Größen und inneren Strukturen der wurmartigen und lamellearen Aggregate mittels Licht-, Neutronen- und Röntgenstreumethoden untersucht, welche nahe des Trübungspunktes der Lösungen auftreten. Durch die Kombination von zeitaufgelösten dynamischen Licht- und Kleinwinkelstreuung-Experimenten wurden die strukturellen Änderungen und kinetischen Prozesse während des Kugel-Wurm-Übergangs untersucht, welche den bereits in der Literatur vorgeschlagenen zufälligen Fusionsprozess weiter bestätigen. Es wurde beobachtet, dass wässrige P123-Lösungen unterhalb der kritischen Kristallisationskonzentration nach mehreren Stunden gelieren, was durch Neutronenreflektometrie mit dem Auftreten und der Struktur von oberflächennahen Monolagen auf den Messzellwänden in Verbindung gebracht wurde. Wenn ein hierarchisches Model für die lamellaren Mizellen verwendet wird, das deren Periodizität, Domänen- und Gesamtgröße berücksichtigt, ist es außerdem möglich, die bisherigen Ergebnisse in der Literatur zu vereinigen und eine direkte Verbindung zwischen dem Aggregationsverhalten von P123 auf Oberflächen und in Lösung bei Temperaturen nahe des Trübungspunktes zu ziehen. KW - Weiche Materie KW - Polymerlösung KW - Micelle KW - Röntgenstreuung KW - Neutronenstreuung KW - Soft matter KW - worm-like micelles KW - lamellar micelles KW - neutron reflectometry KW - SAXS KW - SANS KW - DLS KW - Pluronic KW - P123 Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-246070 ER - TY - THES A1 - Swirski, Thorben T1 - Studies on the Effect of Gas Contaminations in Micromegas Detectors and Production of Micromegas Detectors for the New Small Wheel of the ATLAS Detector T1 - Untersuchung des Einflusses von Gasverunreinigungen auf Micromegas Detektoren und Produktion von Micromegas Detektoren für das New Small Wheel des ATLAS Detektors N2 - This work consists of two parts. On the one hand, it describes simulation and measurement of the effect of contaminations of the detector gas on the performance of particle detectors, with special focus on Micromegas detectors. On the other hand, it includes the setup of a production site for the finalization of drift panels which are going to be used in the ATLAS NSW. The first part augments these two parts to give an introduction into the theoretical foundations of gaseous particle detectors. N2 - Diese Arbeit beinhaltet zwei Teile. Zum einen behandelt sie die Simulation und die Messung des Effekts von Verunreinigungen des Detektorgases auf Teilchen- detektoren, im speziellen vom Typ Micromegas. Zum anderen beinhaltet sie den Aufbau einer Produktionsstätte zur Vollendung von Driftpaneelen, die im ATLAS NSW Einsatz finden werden. Der erste Teil dieser Arbeit nimmt die Rolle eines Einführungsteiles ein, der die theoretischen Grundlagen von gasgefüllten Detekto- ren bespricht. KW - Gasionisationsdetektor KW - ATLAS KW - Micromegas KW - MPGD Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-246405 ER - TY - JOUR A1 - Andelovic, Kristina A1 - Winter, Patrick A1 - Jakob, Peter Michael A1 - Bauer, Wolfgang Rudolf A1 - Herold, Volker A1 - Zernecke, Alma T1 - Evaluation of plaque characteristics and inflammation using magnetic resonance imaging JF - Biomedicines N2 - Atherosclerosis is an inflammatory disease of large and medium-sized arteries, characterized by the growth of atherosclerotic lesions (plaques). These plaques often develop at inner curvatures of arteries, branchpoints, and bifurcations, where the endothelial wall shear stress is low and oscillatory. In conjunction with other processes such as lipid deposition, biomechanical factors lead to local vascular inflammation and plaque growth. There is also evidence that low and oscillatory shear stress contribute to arterial remodeling, entailing a loss in arterial elasticity and, therefore, an increased pulse-wave velocity. Although altered shear stress profiles, elasticity and inflammation are closely intertwined and critical for plaque growth, preclinical and clinical investigations for atherosclerosis mostly focus on the investigation of one of these parameters only due to the experimental limitations. However, cardiovascular magnetic resonance imaging (MRI) has been demonstrated to be a potent tool which can be used to provide insights into a large range of biological parameters in one experimental session. It enables the evaluation of the dynamic process of atherosclerotic lesion formation without the need for harmful radiation. Flow-sensitive MRI provides the assessment of hemodynamic parameters such as wall shear stress and pulse wave velocity which may replace invasive and radiation-based techniques for imaging of the vascular function and the characterization of early plaque development. In combination with inflammation imaging, the analyses and correlations of these parameters could not only significantly advance basic preclinical investigations of atherosclerotic lesion formation and progression, but also the diagnostic clinical evaluation for early identification of high-risk plaques, which are prone to rupture. In this review, we summarize the key applications of magnetic resonance imaging for the evaluation of plaque characteristics through flow sensitive and morphological measurements. The simultaneous measurements of functional and structural parameters will further preclinical research on atherosclerosis and has the potential to fundamentally improve the detection of inflammation and vulnerable plaques in patients. KW - atherosclerosis KW - mouse models KW - wall shear stress KW - pulse wave velocity KW - arterial elasticity KW - inflammation KW - magnetic resonance imaging Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-228839 SN - 2227-9059 VL - 9 IS - 2 ER - TY - THES A1 - Hammer, Sebastian Tobias T1 - Influence of Crystal Structure on Excited States in Crystalline Organic Semiconductors T1 - Einfluss der Kristallstruktur auf angeregte Zustände in kristallinen organischen Halbleitern N2 - This thesis focused on the influence of the underlying crystal structure and hence, of the mutual molecular orientation, on the excited states in ordered molecular aggregates. For this purpose, two model systems have been investigated. In the prototypical donor-acceptor complex pentacene-perfluoropentacene (PEN-PFP) the optical accessibility of the charge transfer state and the possibility to fabricate highly defined interfaces by means of single crystal templates enabled a deep understanding of the spatial anisotropy of the charge transfer state formation. Transferring the obtained insights to the design of prototypical donor-acceptor devices, the importance of interface control to minimize the occurrence of charge transfer traps and thereby, to improve the device performance, could be demonstrated. The use of zinc phthalocyanine (ZnPc) allowed for the examination of the influence of molecular packing on the excited electronic states without a change in molecular species by virtue of its inherent polymorphism. Combining structural investigations, optical absorption and emission spectroscopy, as well as Franck-Condon modeling of emission spectra revealed the nature of the optical excited state emission in relation to the structural \(\alpha \) and \(\beta \) phase over a wide temperature range from 4 K to 300 K. As a results, the phase transition kinetics of the first order \(\alpha \rightarrow \beta\) phase transition were characterized in depth and applied to the fabrication of prototypical dual luminescent OLEDs. N2 - Ziel dieser Arbeit war es, den Einfluss der zugrunde liegenden Kristallstruktur und der damit einhergehenden molekularen Anordnung auf die angeregten Zustände in molekularen Aggregaten zu untersuchen. Zu diesem Zweck wurden zwei Modellsysteme ausgewählt. Der optisch anregbare und detektierbare Ladungstransferzustand im Donor-Akzeptor Komplex Pentacen-Perfluoropentacen (PEN-PFP) und die Möglichkeit, hoch definierte kristalline Grenzflächen herzustellen, ermöglichten detaillierte Einblicke in die räumlich anisotrope Ausbildung des Ladungstransferzustands. Durch Ausnutzen der gewonnenen Erkenntnisse beim Design von Bauteilen auf Basis dieser Donor-Akzeptor Grenzflächen konnte gezeigt werden, wie wichtig die morphologische Kontrolle ist, um das Auftreten von Fallenzuständen in Zusammenhang mit solchen Ladungstransferprozessen zu minimieren und damit die elektronischen Bauteileigenschaften zu verbessern. Für Zinkphthalocyanin (ZnPc) und dem ihm eigenen Polymorphismus konnte der Einfluss der molekularen Packung auf angeregte Zustände untersucht werden, ohne die chemische Struktur zu verändern. Durch die Kombination von Strukturuntersuchungen, optischer Absorptions- und Emissionsspektroskopie und Franck-Condon Modellierungen wurde der Ursprung der Emission der angeregten Zustände in der strukturellen \(\alpha \) und \(\beta \)Phase über einen großen Temperaturbereich von 4 K bis 300 K offen gelegt. Mithilfe der erlangten Einsichten wurde die Kinetik des \(\alpha \rightarrow \beta\) Phasenübergangs erster Ordnung charakterisiert und zur Herstellung von dual-lumineszenten OLEDs verwendet. KW - Organischer Halbleiter KW - Phthalocyanin KW - Pentacen KW - Ladungstransfer KW - Optoelektronik KW - Exziton KW - Charge-Transfer KW - Donor-Acceptor Interface Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-244019 ER -