@phdthesis{Fischer2023, author = {Fischer, Mathias}, title = {Transient Phenomena and Ionic Kinetics in Hybrid Metal Halide Perovskite Solar Cells}, doi = {10.25972/OPUS-32220}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-322204}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2023}, abstract = {The fact that photovoltaics is a key technology for climate-neutral energy production can be taken as a given. The question to what extent perovskite will be used for photovoltaic technologies has not yet been fully answered. From a photophysical point of view, however, it has the potential to make a useful contribution to the energy sector. However, it remains to be seen whether perovskite-based modules will be able to compete with established technologies in terms of durability and cost efficiency. The additional aspect of ionic migration poses an additional challenge. In the present work, primarily the interaction between ionic redistribution, capacitive properties and recombination dynamics was investigated. This was done using impedance spectroscopy, OCVD and IV characteristics as well as extensive numerical drift-diffusion simulations. The combination of experimental and numerical methods proved to be very fruitful. A suitable model for the description of solar cells with respect to mobile ions was introduced in chapter 4.4. The formal mathematical description of the model was transferred by a non-dimensionalization and suitable numerically solvable form. The implementation took place in the Julia language. By intelligent use of structural properties of the sparse systems of equations, automatic differentiation and the use of efficient integration methods, the simulation tool is not only remarkably fast in finding the solution, but also scales quasi-linearly with the grid resolution. The software package was released under an open source license. In conventional semiconductor diodes, capacitance measurements are often used to determine the space charge density. In the first experimental chapter 5, it is shown that although this is also possible for the ionic migration present in perovskites, it cannot be directly understood as doping related, since the space charge distribution strongly depends on the preconditions and can be manipulated by an externally applied voltage. The exact form of this behavior depends on the perovskite composition. This shows, among other things, that experimental results can only be interpreted within the framework of conventional semiconductors to a very limited extent. Nevertheless, the built-in 99 potential of the solar cell can be determined if the experiments are carried out properly. A statement concerning the type and charge of the mobile ions is not possible without further effort, while their number can be determined. The simulations were applied to experimental data in chapter 6. Thus, it could be shown that mobile ions make a significant contribution to the OCVD of perovskite solar cells. j-V characteristics and OCVD transients measured as a function of temperature and illumination intensities could be quantitatively modeled simultaneously using a single global set of parameters. By the simulations it was further possible to derive a simple experimental procedure to determine the concentration and the diffusivity of the mobile ions. The possibility of describing different experiments in a uniform temperaturedependent manner strongly supports the model of mobile ions in perovskites. In summary, this work has made an important contribution to the elucidation of ionic contributions to the (photo)electrical properties of perovskite solar cells. Established experimental techniques for conventional semiconductors have been reinterpreted with respect to ionic mass transport and new methods have been proposed to draw conclusions on the properties for ionic transport. As a result, the published simulation tools can be used for a number of further studies.}, subject = {Simulation}, language = {en} } @phdthesis{Weber2016, author = {Weber, Stefan}, title = {Simulation Studies on the New Small Wheel Shielding of the ATLAS Experiment and Design and Construction of a Test Facility for Gaseous Detectors}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-133084}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {In this thesis two main projects are presented, both aiming at the overall goal of particle detector development. In the first part of the thesis detailed shielding studies are discussed, focused on the shielding section of the planned New Small Wheel as part of the ATLAS detector upgrade. Those studies supported the discussions within the upgrade community and decisions made on the final design of the New Small Wheel. The second part of the thesis covers the design, construction and functional demonstration of a test facility for gaseous detectors at the University of W{\"u}rzburg. Additional studies on the trigger system of the facility are presented. Especially the precision and reliability of reference timing signals were investigated.}, subject = {Teilchendetektor}, language = {en} } @phdthesis{Mueller2013, author = {M{\"u}ller, Thomas M.}, title = {Computergest{\"u}tztes Materialdesign: Mikrostruktur und elektrische Eigenschaften von Zirkoniumdioxid-Aluminiumoxid Keramiken}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-110942}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {Die Mikrostruktur von Zirkonoxid-Aluminiumoxid Keramiken wurde im Rasterelektronenmikroskop (REM) untersucht und mittels quantitativer Bildanalyse weiter charakterisiert. Die so erhaltenen spezifischen morphologischen Kennwerte wurden mit denen, die an dreidimensionalen Modellstrukturen {\"a}quivalent gewonnen wurden, verglichen. Es wurden modifizierte Voronoistrukturen benutzt, um die beteiligten Phasen in repr{\"a}sentativen Volumenelementen (RVE) auf Voxelbasis zu erzeugen. Poren wurden an den Ecken und Kanten dieser Strukturen nachtr{\"a}glich hinzugef{\"u}g. Nachdem alle relevanten Kennwerte der Modellstrukturen an die realen keramischen Mikrostrukturen angepasst wurden, musste das RVE f{\"u}r die Finite Element Simulationen (FES) geeignet vernetzt werden. Eine einfache {\"U}bernahme der Voxelstrukturen in hexaedrische Elemente f{\"u}hrt zu sehr langen Rechenzeiten, und die erforderliche Genauigkeit der FES konnte nicht erreicht werden. Deshalb wurde zun{\"a}chst eine adaptive Oberfl{\"a}chenvernetzung ausgehend von einem generally classed marching tetrahedra Algorithmus erzeugt. Dabei wurde besonderer Wert auf die Beibehaltung der zuvor angepassten Kennwerte gelegt. Um die Rechenzeiten zu verk{\"u}rzen ohne die Genauigkeit der FES zu beeintr{\"a}chtigen, wurden die Oberfl{\"a}chenvernetzungen dergestalt vereinfacht, dass eine hohe Aufl{\"o}sung an den Ecken und Kanten der Strukturen erhalten blieb, w{\"a}hrend sie an flachen Korngrenzen stark verringert wurde. Auf Basis dieser Oberfl{\"a}chenvernetzung wurden Volumenvernetzungen, inklusive der Abbildung der Korngrenzen durch Volumenelemente, erzeugt und f{\"u}r die FES benutzt. Dazu wurde ein FE-Modell zur Simulation der Impedanzspektren aufgestellt und validiert. Um das makroskopische elektrische Verhalten der polykristallinen Keramiken zu simulieren, mussten zun{\"a}chst die elektrischen Eigenschaften der beteiligten Einzelphasen gemessen werden. Dazu wurde eine Anlage zur Impedanzspektroskopie bis 1000 °C aufgebaut und verwendet. Durch weitere Auswertung der experimentellen Daten unter besonderer Ber{\"u}cksichtigung der Korngrenzeffekte wurden die individuellen Phaseneigenschaften erhalten. Die Zusammensetzung der Mischkeramiken reichte von purem Zirkonoxid (3YSZ) bis zu purem Aluminiumoxid. Es wurde eine sehr gute {\"U}bereinstimmung zwischen den experimentellen und simulierten Werten bez{\"u}glich der betrachteten elektrischen, mechanischen und thermischen Eigenschaften erreicht. Die FES wurden verwendet, um die Einfl{\"u}sse verschiedener mikrostruktureller Parameter, wie Porosit{\"a}t, Korngr{\"o}ße und Komposition, auf das makroskopische Materialverhalten n{\"a}her zu untersuchen.}, subject = {Keramischer Werkstoff}, language = {de} } @phdthesis{Wagenpfahl2013, author = {Wagenpfahl, Alexander Johannes}, title = {Numerical simulations on limitations and optimization strategies of organic solar cells}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-90119}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {Continuously increasing energy prices have considerably influenced the cost of living over the last decades. At the same time increasingly extreme weather conditions, drought-filled summers as well as autumns and winters with heavier rainfall and worsening storms have been reported. These are possibly the harbingers of the expected approaching global climate change. Considering the depletability of fossil energy sources and a rising distrust in nuclear power, investigations into new and innovative renewable energy sources are necessary to prepare for the coming future. In addition to wind, hydro and biomass technologies, electricity generated by the direct conversion of incident sunlight is one of the most promising approaches. Since the syntheses and detailed studies of organic semiconducting polymers and fullerenes were intensified, a new kind of solar cell fabrication became conceivable. In addition to classical vacuum deposition techniques, organic cells were now also able to be processed from a solution, even on flexible substrates like plastic, fabric or paper. An organic solar cell represents a complex electrical device influenced for instance by light interference for charge carrier generation. Also charge carrier recombination and transport mechanisms are important to its performance. In accordance to Coulomb interaction, this results in a specific distribution of the charge carriers and the electric field, which finally yield the measured current-voltage characteristics. Changes of certain parameters result in a complex response in the investigated device due to interactions between the physical processes. Consequently, it is necessary to find a way to generally predict the response of such a device to temperature changes for example. In this work, a numerical, one-dimensional simulation has been developed based on the drift-diffusion equations for electrons, holes and excitons. The generation and recombination rates of the single species are defined according to a detailed balance approach. The Coulomb interaction between the single charge carriers is considered through the Poisson equation. An analytically non-solvable differential equation system is consequently set-up. With numerical approaches, valid solutions describing the macroscopic processes in organic solar cells can be found. An additional optical simulation is used to determine the spatially resolved charge carrier generation rates due to interference. Concepts regarding organic semiconductors and solar cells are introduced in the first part of this work. All chapters are based on previous ones and logically outline the basic physics, device architectures, models of charge carrier generation and recombination as well as the mathematic and numerical approaches to obtain valid simulation results. In the second part, the simulation is used to elaborate issues of current interest in organic solar cell research. This includes a basic understanding of how the open circuit voltage is generated and which processes limit its value. S-shaped current-voltage characteristics are explained assigning finite surface recombination velocities at metal electrodes piling-up local space charges. The power conversion efficiency is identified as a trade-off between charge carrier accumulation and charge extraction. This leads to an optimum of the power conversion efficiency at moderate to high charge carrier mobilities. Differences between recombination rates determined by different interpretations of identical experimental results are assigned to a spatially inhomogeneous recombination, relevant for almost all low mobility semiconductor devices.}, subject = {Organische Solarzelle}, language = {en} }