@phdthesis{Schlereth2020, author = {Schlereth, Raimund}, title = {New techniques and improvements in the MBE growth of Hg-containing narrow gap semiconductors}, doi = {10.25972/OPUS-20079}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-200790}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2020}, abstract = {The subject of this thesis is the growth of Hg\(_{1-x}\)Cd\(_2\)Te layers via molecular beam epitaxy (MBE). This material system gives rise to a number of extraordinary physical phenomena related to its electronic band structure and therefore is of fundamental interest in research. The main results can be divided into three main areas, the implementation of a temperature measurement system based on band edge thermometry (BET), improvements of CdTe virtual substrate growth and the investigation of Hg\(_{1-x}\)Cd\(_2\)Te for different compositions.}, subject = {Halbleiter}, language = {en} } @phdthesis{Quast2017, author = {Quast, Jan-Henrik}, title = {Influence of Hot Carriers on Spin Diffusion in Gallium Arsenide}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-147611}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2017}, abstract = {Since the late 20th century, spintroncis has become a very active field of research [ŽFS04]. The prospect of spin based information technology, featuring strongly decreased energy consumption and possibly quantum-computation capabilities, has fueled this interest. Standard materials, like bulk gallium arsenide (GaAs), have experienced new attention in this context by exhibiting extraordinarily long lifetimes for nonequilibrium spin information, which is an important requirement for efficient spin based information storage and transfer. Another important factor is the lengthscale over which spin information can be transported in a given material and the role of external influences. Both aspects have been studied experimentally with innovative optical methods since the late 1990s by the groups of D. D. AWSHALOM and S. A. CROOKER et al. [KA99, CS05, CFL+05]. Although the pioneering experimental approaches presented by these authors led to a variety of insights into spin propagation, some questions were raised as well. Most prominently, the classical Einstein relation, which connects the mobility and diffusivity of a given particle species, seemed to be violated for electron spins in a bulk semiconductor. In essence, nonequilibrium spins appeared to move (diffuse) faster than the electrons that actually carry the spin. However, this contradiction was masked by the fact, that the material of interest was n-type GaAs with a doping concentration directly at the transition between metallic and insulating behavior (MIT). In this regime, the electron mobility is difficult to determine experimentally. Consequently, it was not a priori obvious that the spin diffusion rates determined by the newly introduced optical methods were in contradiction with established electrical transport data. However, in an attempt to extend the available data of optical spin microscopy, another issue surfaced, concerning the mathematical drift-diffusion model that has been commonly used to evaluate lateral spin density measurements. Upon close investigation, this model appears to have a limited range of applicability, due to systematic discrepancies with the experimental data (chapter 4). These deviations are noticeable in original publications as well, and it is shown in the present work that they originate from the local heating of electrons in the process of optical spin pumping. Based on insights gained during the second half of the 20th century, it is recapitulated why conduction electrons are easily overheated at cryogenic temperatures. The main reason is the poor thermal coupling between electrons and the crystal lattice (chapter 3). Experiments in the present work showed that a significant thermal gradient exists in the conduction band under local optical excitation of electron-hole pairs. This information was used to develop a better mathematical model of spin diffusion, which allowed to derive the diffusivity of the undisturbed system, due to an effective consideration of electron overheating. In this way, spin diffusivities of n-GaAs were obtained as a function of temperature and doping density in the most interesting regime of the metal-insulator-transition. The experiments presented in this work were performed on a series of n-type bulk GaAs samples, which comprised the transition between metallic conductivity and electrical insulation at low temperatures. Local electron temperature gradients were measured by a hyperspectral photoluminescence imaging technique with subsequent evaluation of the electron-acceptor (e,A\$^0\$) line shape. The local density of nonequilibrium conduction electron spins was deduced from scanning magneto-optic Kerr effect microscopy. Numerical evaluations were performed using the finite elements method in combination with a least-squares fitting procedure. Chapter 1 provides an introduction to historical and recent research in the field of spintronics, as far as it is relevant for the understanding of the present work. Chapter 2 summarizes related physical concepts and experimental methods. Here, the main topics are semiconductor optics, relaxation of hot conduction electrons, and the dynamics of nonequilibrium electron spins in semiconductors. Chapter 3 discusses optical heating effects due to local laser excitation of electron-hole pairs. Experimental evaluations of the acceptor-bound-exciton triplet lines led to the conclusion that the crystal lattice is usually not overheated even at high excitation densities. Here, the heat is efficiently dissipated to the bath, due to the good thermal conductivity of the lattice. Furthermore, the heating of the lattice is inherently limited by the weak heat transfer from the electron system, which on the other hand is also the reason why conduction electrons are easily overheated at temperatures below ≈ 30 K. Spatio-spectral imaging of the electron-acceptor-luminescence line shape allowed to trace the thermal gradient within the conduction band under focused laser excitation. A heat-diffusion model was formulated, which reproduces the experimental electron-temperature trend nicely for low-doped GaAs samples of n- and p-type. For high-doped n-type GaAs samples, it could be shown that the lateral electron-temperature profile is well approximated by a Gaussian. This facilitated easy integration of hot electron influence into the mathematical model of spin diffusion. Chapter 4 deals with magneto-optical imaging of optically induced nonequilibrium conduction-electron spins in n-GaAs close to the MIT. First, the spectral dependence of the magneto-optic Kerr effect was examined in the vicinity of the fundamental band gap. Despite the marked differences among the investigated samples, the spectral shape of the Kerr rotation could be described in terms of a simple Lorentz-oscillator model in all cases. Based on this model, the linearity of the Kerr effect with respect to a nonequilibrium spin polarization is demonstrated, which is decisively important for further quantitative evaluations. Furthermore, chapter 4 presents an experimental survey of spin relaxation in n-GaAs at the MIT. Here, the dependence of the spin relaxation time on bath temperature and doping density was deduced from Hanle-MOKE measurements. While all observed trends agree with established literature, the presented results extend the current portfolio by adding a coherent set of data. Finally, diffusion of optically generated nonequilibrium conduction-electron spins was investigated by scanning MOKE microscopy. First, it is demonstrated that the standard diffusion model is inapplicable for data evaluation in certain situations. A systematic survey of the residual deviations between this model and the experimental data revealed that this situation unfortunately persisted in published works. Moreover, the temperature trend of the residual deviations suggests a close connection to the local overheating of conduction electrons. Consequently, a modified diffusion model was developed and evaluated, in order to compensate for the optical heating effect. From this model, much more reliable results were obtained, as compared to the standard diffusion model. Therefore, it was shown conclusively that the commonly reported anomalously large spin diffusivities were at least in parts caused by overheated conduction electrons. In addition to these new insights some experimental and technological enhancements were realized in the course of this work. First, the optical resolution of scanning MOKE microscopy was improved by implementing a novel scanning mechanism, which allows the application of a larger aperture objective than in the usual scheme. Secondly, imaging photoluminescence spectroscopy was employed for spatially resolved electron-temperature measurements. Here, two different implementations were developed: One for lattice-temperature measurements by acceptor-bound exciton luminescence and a second for conduction-electron temperature measurements via the analysis of the electron-acceptor luminescence line shape. It is shown in the present work that the originally stated anomalously high spin diffusivities were caused to a large extent by unwanted optical heating of the electron system. Although an efficient method was found to compensate for the influence of electron heating, it became also evident that the classical Einstein relation was nonetheless violated under the given experimental conditions. In this case however, it could be shown that this discrepancy did not originate from an experimental artifact, but was instead a manifestation of the fermionic nature of conduction electrons.}, subject = {Galliumarsenid}, language = {en} } @phdthesis{Pfeuffer2016, author = {Pfeuffer, Rebekka Christina}, title = {Growth and characterization of II-VI semiconductor nanowires grown by Au catalyst assisted molecular beam epitaxy}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-141385}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {In the present PhD thesis the control of the morphology, such as the diameter, the length, the orientation, the density, and the crystalline quality of 1D ZnSe NWs grown by MBE for optical and transport applications has been achieved.}, subject = {Zinkselenid}, language = {en} } @phdthesis{Maier2010, author = {Maier, Florian C.}, title = {Spectromicroscopic characterisation of the formation of complex interfaces}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-65062}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {Within the framework of this thesis the mechanisms of growth and reorganisation of surfaces within the first few layers were investigated that are the basis for the fabrication of high quality thin films and interfaces. Two model systems, PTCDA/Ag(111) and CdSe/ZnSe quantum dots (QD), were chosen to study such processes in detail and to demonstrate the power and improvements of the aberration corrected spectromicroscope SMART [1] simultaneously. The measurements benefit especially from the enhanced transmission of the microscope and also from its improved resolution. SMART, the first double-aberration corrected instrument of its kind [2], provided comprehensive methods (LEEM/PEEM, μ-LEED, μ-XPS) to study in-situ and in real time the surface reorganisation and to determine morphology, local structure and local chemical composition of the resulting thin film. Complementarily, a commercial AFM [3] was used ex-situ. XPEEM and μ-XPS measurements were made possible by attaching SMART to the high flux density beamline of the soft-X-ray source BESSY-II [4]. PTCDA/Ag(111) - Growth and structure of the first two layers Although PTCDA/Ag(111) is one of the most intensely studied model systems for the growth of organic semiconductor thin films, it still offers new insights into a complex growth behaviour. This study enlightens the temperature dependant influence of morphological features as small as monatomic Ag steps on the growth process of the first two layers. At low temperatures, single Ag steps act as diffusion barriers. But interdiffusion was observed already for the 2nd layer whereas domain boundaries in the 1st PTCDA-layer persist for crystallite growth in the 2nd layer. 1st layer islands are more compact and the more dendritic development of the 2nd layer indicates reduced interaction strength between 2nd and 1st layer. These findings were explained by a model consisting of structural and potential barriers. The second part of the PTCDA study reveals a variety of phases that appears only if at least two layers are deposited. Besides the six known rotational domains of the interface system PTCDA/Ag(111) [5], a further manifold of structures was discovered. It does not only show a surprising striped image contrast, but the 2nd layer also grows in an elongated way along these so-called 'ripples'. The latter show a rather large period and were found in a wide temperature range. Additionally the μ-LEED pattern of such a domain shows a new super-superstructure as well. This phase is explained by a structural model that introduces a rotated, more relaxed domain in the 2nd layer that does not exist in the first layer. Its structural parameters are similar to those of the bulk unitcells of PTCDA. The model is confirmed by the observation of two different rotational domains that grow on top of one single 'substrate' domain in the 1st layer. The orientations of the ripple phases fit as well to the predictions of the model. The growth direction along the ripples corresponds to the short diagonal of the super-superstructure unitcell with diamond-like shape. CdSe/ZnSe - Inverse structuring by sublimation of an α-Te cap With the second model system the formation of CdSe quantum dots (QD) from strained epi-layers was investigated. In this case the structures do not form during deposition, but rather during sublimation of the so-called 'ignition cap'. For these pilot experiments not only the process of QD formation itself was of interest, but also the portability of the preparation and the prevention of contaminations. It was found that the α-Se is well suited for capping and the last step of the QD preparation, the sublimation of the α-Te cap, needs a sufficiently high rate in rise of temperature. Subsequently the cap, the process of desorption and the final surface with the quantum structures were investigated in detail. The cap was deposited by the MBE-group in W{\"u}rzburg as an amorphous Te layer but was found to contain a variety of structures. Holes, cracks, and micro-crystallites within an α-Te matrix were identified. Sublimation of the "ignition cap" was observed in real-time. Thus the discovered cap-structures could be correlated with the newly formed features as, e.g., QDs on the bare CdSe surface. Since CdSe/ZnSe QDs prefer to form in the neighbourhood of the Te μ-crystallites, Te was found to play a major role in their formation process. Different explanations as the impact of Te as a surfactant, an enhanced mobility of adatoms or as stressor nuclei are discussed. The spectromicroscopic characterisation of the CdSe surface with QDs revealed the crystallographic directions. An increased Cd signal of the film was found at positions of former holes. Several possibilities as segregation or surface termination are reviewed, that might explain this slight Cd variation. Therewith, an important step to a detailed understanding of the complex reorganisation process in coating systems could be achieved.}, subject = {Halbleiterschicht}, language = {en} } @phdthesis{Volkmann2004, author = {Volkmann, Thorsten}, title = {Lattice gas models and simulations of epitaxial growth}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-13812}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2004}, abstract = {In this PhD thesis, we develop models for the numerical simulation of epitaxial crystal growth, as realized, e.g., in molecular beam epitaxy (MBE). The basic idea is to use a discrete lattice gas representation of the crystal structure, and to apply kinetic Monte Carlo (KMC) simulations for the description of the growth dynamics. The main advantage of the KMC approach is the possibility to account for atomistic details and at the same time cover MBE relevant time scales in the simulation. In chapter 1, we describe the principles of MBE, pointing out relevant physical processes and the influence of experimental control parameters. We discuss various methods used in the theoretical description of epitaxial growth. Subsequently, the underlying concepts of the KMC method and the lattice gas approach are presented. Important aspects concerning the design of a lattice gas model are considered, e.g. the solid-on-solid approximation or the choice of an appropriate lattice topology. A key element of any KMC simulation is the selection of allowed events and the evaluation of Arrhenius rates for thermally activated processes. We discuss simplifying schemes that are used to approximate the corresponding energy barriers if detailed knowledge about the barriers is not available. Finally, the efficient implementation of the MC kinetics using a rejection-free algorithm is described. In chapter 2, we present a solid-on-solid lattice gas model which aims at the description of II-VI(001) semiconductor surfaces like CdTe(001). The model accounts for the zincblende structure and the relevant surface reconstructions of Cd- and Te-terminated surfaces. Particles at the surface interact via anisotropic nearest and next nearest neighbor interactions, whereas interactions in the bulk are isotropic. The anisotropic surface interactions reflect known properties of CdTe(001) like the small energy difference between the c(2x2) and (2x1) vacancy structures of Cd-terminated surfaces. A key element of the model is the presence of additional Te atoms in a weakly bound Te* state, which is motivated by experimental observations of Te coverages exceeding one monolayer at low temperatures and high Te fluxes. The true mechanism of binding excess Te to the surface is still unclear. Here, we use a mean-field approach assuming a Te* reservoir with limited occupation. In chapter 3, we perform KMC simulations of atomic layer epitaxy (ALE) of CdTe(001). We study the self-regulation of the ALE growth rate and demonstrate how the interplay of the Te* reservoir occupation with the surface kinetics results in two different regimes: at high temperatures the growth rate is limited to one half layer of CdTe per ALE cycle, whereas at low enough temperatures each cycle adds a complete layer. The temperature where the transition between the two regimes occurs depends mainly on the particle fluxes. The temperature dependence of the growth rate and the flux dependence of the transition temperature are in good qualitative agreement with experimental results. Comparing the macroscopic activation energy for Te* desorption in our model with experimental values we find semiquantitative agreement. In chapter 4, we study the formation of nanostructures with alternating stripes during submonolayer heteroepitaxy of two different adsorbate species on a given substrate. We evaluate the influence of two mechanisms: kinetic segregation due to chemically induced diffusion barriers, and strain relaxation by alternating arrangement of the adsorbate species. KMC simulations of a simple cubic lattice gas with weak inter-species binding energy show that kinetic effects are sufficient to account for stripe formation during growth. The dependence of the stripe width on control parameters is investigated. We find an Arrhenius temperature dependence, in agreement with experimental investigations of phase separation in binary or ternary material systems. Canonical MC simulations show that the observed stripes are not stable under equilibrium conditions: the adsorbate species separate into very large domains. Off-lattice simulations which account for the lattice misfit of the involved particle species show that, under equilibrium conditions, the competition between binding and strain energy results in regular stripe patterns with a well-defined width depending on both misfit and binding energies. In KMC simulations, the stripe-formation and the experimentally reported ramification of adsorbate islands are reproduced. To clarify the origin of the island ramification, we investigate an enhanced lattice gas model whose parameters are fitted to match characteristic off-lattice diffusion barriers. The simulation results show that a satisfactory explanation of experimental observations within the lattice gas framework requires a detailed incorporation of long-range elastic interactions. In the appendix we discuss supplementary topics related to the lattice gas simulations in chapter 4.}, subject = {Kristallwachstum}, language = {en} }