@phdthesis{Zapf2019, author = {Zapf, Michael}, title = {Oxidische Perovskite mit Hoher Massenzahl Z: D{\"u}nnfilmdeposition und Spektroskopische Untersuchungen}, doi = {10.25972/OPUS-18537}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-185370}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {Perovskite oxides are a very versatile material class with a large variety of outstanding physical properties. A subgroup of these compounds particularly tempting to investigate are oxides involving high-\(Z\) elements, where spin-orbit coupling is expected to give rise to new intriguing phases and potential application-relevant functionalities. This thesis deals with the preparation and characterization of two representatives of high-\(Z\) oxide sample systems based on KTaO\(_3\) and BaBiO\(_3\). KTaO\(_3\) is a band insulator with an electronic valence configuration of Ta 5\(d\)\(^0\) . It is shown that by pulsed laser deposition of a disordered LaAlO\(_3\) film on the KTaO\(_3\)(001) surface, through the creation of oxygen vacancies, a Ta 5\(d\)\(^{0+\(\delta\)}\) state is obtained in the upmost crystal layers of the substrate. In consequence a quasi two dimensional electron system (q2DES) with large spin-orbit coupling emerges at the heterointerface. Measurements of the Hall effect establish sheet carrier densities in the range of 0.1-1.2 10\(^{14}\) cm\(^2\), which can be controlled by the applied oxygen background pressure during deposition and the LaAlO\(_3\) film thickness. When compared to the prototypical oxide q2DESs based on SrTiO\(_3\) crystals, the investigated system exhibits exceptionally large carrier mobilities of up to 30 cm\(^2\)/Vs (7000 cm\(^2\)/Vs) at room temperature (below 10 K). Through a depth profiling by photoemission spectra of the Ta 4\(f\) core level it is shown that the majority of the Ta 5\(d\)\(^0\) charge carriers, consisting of mobile and localized electrons, is situated within 4 nm from the interface at low temperatures. Furthermore, the momentum-resolved electronic structure of the q2DES \(buried\) underneath the LaAlO\(_3\) film is probed by means of hard X-ray angle-resolved photoelectron spectroscopy. It is inferred that, due to a strong confinement potential of the electrons, the band structure of the system is altered compared to \(n\)-doped bulk KTO. Despite the constraint of the electron movement along one direction, the Fermi surface exhibits a clear three dimensional momentum dependence, which is related to a depth extension of the conduction channels of at least 1 nm. The second material, BaBiO\(_3\), is a charge-ordered insulator, which has recently been predicted to emerge as a large-gap topological insulator upon \(n\)-doping. This study reports on the thin film growth of pristine BaBiO\(_3\) on Nb:SrTiO\(_3\)(001) substrates by means of pulsed laser deposition. The mechanism is identified that facilitates the development of epitaxial order in the heterostructure despite the presence of an extraordinary large lattice mismatch of 12 \%. At the heterointerface, a structurally modified layer of about 1.7 nm thickness is formed that gradually relieves the in-plane strain and serves as the foundation of a relaxed BBO film. The thereupon formed lattice orders laterally in registry with the substrate with the orientation BaBiO\(_3\)(001)||SrTiO\(_3\)(001) by so-called domain matching, where 8 to 9 BaBiO\(_3\) unit cells align with 9 to 10 unit cells of the substrate. Through the optimization of the deposition conditions in regard to the cation stoichiometry and the structural lattice quality, BaBiO\(_3\) thin films with bulk-like electronic properties are obtained, as is inferred from a comparison of valence band spectra with density functional theory calculations. Finally, a spectroscopic survey of BaBiO\(_3\) samples of various thicknesses resolves that a recently discovered film thickness-controlled phase transition in BaBiO\(_3\) thin films can be traced back to the structural and concurrent stoichiometric modifications occuring in the initially formed lattice on top of the SrTiO\(_3\) substrate rather than being purely driven by the smaller spatial extent of the BBO lattice.}, subject = {Perowskit}, language = {en} } @phdthesis{Weber2015, author = {Weber, Christian}, title = {Electrochemical Energy Storage: Carbon Xerogel-Manganese Oxide Composites as Supercapacitor Electrode Materials}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-130748}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2015}, abstract = {Electrochemical double layer capacitors (EDLC), most commonly referred to as "supercapacitors", have gained increasing scientific and commercial interest in recent years. Purely electrostatic charge storage processes allow charge- and discharge cycles in the second-time scale, exhibiting a theoretical capacitance in the order of 100 F per gram of electrode material, thereby providing efficient recuperation devices for electromechanical processes, for example. Introducing electrochemically active materials such as manganese oxides into the supercapacitor electrode, allows to combine the double-layer storage with a battery-like storage process, leading to capacitance that can be up to two orders of magnitude larger than those in EDLC. In the present work, an electroless deposition approach of manganese oxide on a carbon scaffold is adapted and further investigated. The carbon material is derived from an organic xerogel, which in turn is prepared via a sol-gel process, allowing tailoring of the structural properties of the carbon, making it an ideal model system to study the relation between morphology and electrochemical performance in the carbon-manganese oxide hybrid electrode. In the first part of this thesis, a variation of manganese oxide deposition time at a low concentration of precursor solution is analyzed. Mass uptakes reach up to 58 wt.\%, leading to an increase of volumetric capacitance by a factor 5, however reducing the dynamic performance of the electrode. The structural characterization gives hints on the deposition location of the active material either in the intra-particular pores of the carbon backbone or on the enveloping surface area of the particles forming the backbone. In order to comprehensively answer the question of the location of the active material within the hybrid electrode, the particle size of the carbon backbone and therefore the enveloping surface area of the carbon particles was varied. For samples with high mass uptakes, scanning electron microscopy (SEM) images show a layer thickness of 27 nm of active material around the carbon particles. In order to quantitatively investigate this layer morphology, even for low mass uptakes where no layer is visible in SEM images, a model interpreting data from anomalous small angle X-ray scattering (ASAXS) measurements was developed. The results confirm the presence of a layer around the carbon particles, exhibiting a layer thickness ranging from 3 to 26 nm. From an electrochemical point of view, carbon backbones with a large enveloping surface area will lead to high mass uptakes in the electroless deposition process and therefore lead to high capacitance of the electrode. However, for future application, electrodeposition approaches should be investigated in detail, since no deposits will form on the interface between carbon backbone and current collector, leading to a better dynamic performance of the hybrid electrode. Furthermore, the ASAXS-method should be promoted and applied on other material systems, since this technique allows to draw important conclusions and allows to deduce integral and quantitative information towards a rational design of high performance electrodes.}, subject = {Superkondensator}, language = {en} } @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} } @phdthesis{Vaeth2016, author = {V{\"a}th, Stefan Kilian}, title = {On the Role of Spin States in Organic Semiconductor Devices}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-141894}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {The present work addressed the influence of spins on fundamental processes in organic semiconductors. In most cases, the role of spins in the conversion of sun light into electricity was of particular interest. However, also the reversed process, an electric current creating luminescence, was investigated by means of spin sensitive measurements. In this work, many material systems were probed with a variety of innovative detection techniques based on electron paramagnetic resonance spectroscopy. More precisely, the observable could be customized which resulted in the experimental techniques photoluminescence detected magnetic resonance (PLDMR), electrically detected magnetic resonance (EDMR), and electroluminescence detected magnetic resonance (ELDMR). Besides the commonly used continuous wave EPR spectroscopy, this selection of measurement methods yielded an access to almost all intermediate steps occurring in organic semiconductors during the conversion of light into electricity and vice versa. Special attention was paid to the fact that all results were applicable to realistic working conditions of the investigated devices, i.e. room temperature application and realistic illumination conditions.}, subject = {Organischer Halbleiter}, language = {en} } @phdthesis{Halbig2019, author = {Halbig, Benedikt}, title = {Surface Raman Spectroscopy on Ordered Metal Adsorbates on Semiconductor Substrates and Thin Intermetallic Films}, doi = {10.25972/OPUS-18138}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-181385}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {Surface systems attract great scientific attention due to novel and exotic properties. The atomically structured surfaces lead to a reduced dimensionality which alters electronic correlations, vibrational properties, and their impact on each other. The emerging physical phenomena are not observed for related bulk materials. In this thesis, ordered (sub)monolayers of metal atoms (Au and Sn) on semiconductor substrates (Si(111) and Ge(111)) and ultrathin intermetallic films (CePt5 and LaPt5) on metal substrate (Pt(111)) are investigated by polarized in situ surface Raman spectroscopy. The surface Raman spectra exhibit features of specific elementary excitations like surface phonons and electronic excitations, which are suitable to gain fundamental insights into the surface systems. The Au-induced surface reconstructions (5x2) and (r3xr3) constitute quasi-one- and two-dimensional Au structures on the Si(111) substrate, respectively. The new reconstruction-related Raman peaks are analyzed with respect to their polarization and temperature behavior. The Raman results are combined with firstprinciples calculations to decide between different proposed structural models. The Au-(5x2)/Si(111) reconstruction is best described by the model of Kwon and Kang, while for Au-(r3xr3)/Si(111) the conjugate honeycomb-chained-trimer model is favored. The Sn-induced reconstructions with 1/3 monolayer on Ge(111) and Si(111) are investigated to reveal their extraordinary temperature behavior. Specific surface phonon modes are identified that are predicted within the dynamical fluctuation model. Contrary to Sn/Si(111), the corresponding vibrational mode of Sn/Ge(111) exhibits a nearly harmonic character. The reversible structural phase transition of Sn/Ge(111) from (r3xr3) to (3x3) is observed, while no phase transition is apparent for Sn/Si(111). Moreover, Raman spectra of the closely related systems Sn-(2r3x2r3)/Si(111) and thin films of a-Sn as well as the clean semiconductor surfaces Si(111)-(7x7) and Ge(111)-c(2x8) are evaluated and compared. The CePt5/Pt(111) system hosts 4f electrons whose energy levels are modified by the crystal field and are relevant for a description of the observed Kondo physics. In contrast, isostructural LaPt5/Pt(111) has no 4f electrons. For CePt5/Pt(111), distinct Raman features due to electronic Raman scattering can be unambiguously related to transitions between the crystal-field states which are depth-dependent. This assignment is supported by comparison to LaPt5/Pt(111) and group theoretical considerations. Furthermore, the vibrational properties of CePt5 and LaPt5 reveal interesting similarities but also striking differences like an unusual temperature shift of a vibration mode of CePt5, which is related to the influence of 4f electrons.}, subject = {Raman-Spektroskopie}, language = {en} } @phdthesis{Elsaesser2019, author = {Els{\"a}sser, Sebastian}, title = {Lattice dynamics and spin-phonon coupling in the multiferroic oxides Eu(1-x)Ho(x)MnO3 and ACrO2}, doi = {10.25972/OPUS-17971}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-179719}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {The focus of this thesis is the investigation of the lattice dynamics and the coupling of magnetism and phonons in two different multiferroic model systems. The first system, which constitutes the main part in this work is the system of multiferroic manganites RMnO\$_{3}\$, in particular Eu\$_{1-x}\$Ho\$_{x}\$MnO\$_{3}\$ with \$0 \le x \le 0.5\$. Its cycloidal spin arrangement leads to the emergence of the ferroelectric polarization via the inverse Dzyaloshinskii-Moriya interaction. This system is special among RMnO\$_{3}\$ as with increasing Ho content \$x\$, Eu\$_{1-x}\$Ho\$_{x}\$MnO\$_{3}\$ does not only become multiferroic, but due to the exchange interaction with the magnetic Ho-ion, the spin cycloid (and with it the electric polarization) is also flipped for higher Ho contents. This makes it one of the first compounds, where the cycloidal reorientation happens spontaneously, rather than with the application of external fields. On the other hand, there is the delafossite ACrO\$_{2}\$ system. Here, due to symmetry reasons, the spin-spiral pattern can not induce the polarization according to the inverse Dzyaloshinskii-Moriya interaction mechanism. Instead, it is thought that another way of magnetoelectric coupling is involved, which affects the charge distribution in the \$d-p\$ hybridized orbitals of the bonds. The lattice vibrations as well as the quasi-particle of the multiferroic phase, the electromagnon, are studied by Raman spectroscopy. Lattice vibrations like the B\$_{3g}\$(1) mode, which involves vibrations of the Mn-O-Mn bonds modulate the exchange interaction and serve as a powerful tool for the investigation of magnetic correlations effects with high frequency accuracy. Raman spectroscopy acts as a local probe as even local magnetic correlations directly affect the phonon vibration frequency, revealing coupling effects onto the lattice dynamics even in the absence of global magnetic order. By varying the temperature, the coupling is investigated and unveils a renormalization of the phonon frequency as the magnetic order develops. For Eu\$_{1-x}\$Ho\$_{x}\$MnO\$_{3}\$, the analysis of this spin-induced phonon frequency renormalization enables the quantitative determination of the in-plane spin-phonon coupling strengths. This formalism, introduced by Granado et al., is extended here to evaluate the out-of-plane coupling strengths, which is enabled by the identification of a previously elusive feature as a vibrational mode. The complete picture is obtained by studying the lattice- and electromagnon dynamics in the magnetic field. Further emphasis is put towards the development of the cycloidal spin structure and correlations with temperature. A new model of describing the temperature-dependent behavior of said spin correlations is proposed and can consistently explain ordering phenomena which were until now unaddressed. The results are underscored with Monte Carlo based simulations of the spin dynamics with varying temperature. Furthermore, a novel effect of a tentative violation of the Raman selection rules in Eu\$_{1-x}\$Ho\$_{x}\$MnO\$_{3}\$ was discovered. While the phonon modes can be separated and identified by their symmetry by choosing appropriate polarization configurations, in a very narrow temperature range, Eu\$_{1-x}\$Ho\$_{x}\$MnO\$_{3}\$ shows an increase of phonon intensities in polarization configurations where they should be forbidden. This is interpreted as a sign of local disorder, caused by 90° domain walls and could be explained within the model framework. This course of action is followed with the material system of delafossites ACrO\$_{2}\$. Being a relatively new class of multiferroic materials, the investigations on ACrO\$_{2}\$ are also of characterizing nature. For this, shell model calculations are performed as a reference to compare the vibrational frequencies obtained by the Raman experiments to. A renormalization of the vibrational frequencies is observed in this system as well and systematically analyzed across the sample series of \textit{A}=Cu, Pd and Ag. Eventually, the effect of applying an external magnetic field is studied. A particularly interesting feature specific for CuCrO\$_{2}\$ is a satellite peak which appears at lower temperatures. It is presumably related to a deformation of the lattice and therefore going to be discussed in further detail.}, subject = {Festk{\"o}rperphysik}, language = {en} } @phdthesis{Benkert2017, author = {Benkert, Andreas}, title = {Soft x-ray spectroscopic study of methanol and glycine peptides in different physical environments}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-147111}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2017}, abstract = {Ionenspezifische Effekte treten in einer Vielzahl von w{\"a}ssrigen L{\"o}sungen aus Elektrolyten und gr{\"o}ßeren Molek{\"u}len wie Peptiden auf. Die Ionen bewirken dabei {\"A}nderungen in Eigenschaften wie z.B. der Viskosit{\"a}t, den Aktivit{\"a}ten von Enzymen, der Stabilit{\"a}t von Proteinen und deren Ein- bzw. Aussalzverhalten. Typischerweise wird die ionenabh{\"a}ngige Auspr{\"a}gung derartiger Effekte mithilfe der Hofmeister-Serie beschrieben, die urspr{\"u}nglich Ionen nach ihrer F{\"a}higkeit ordnete, die L{\"o}slichkeit von H{\"u}hnereiweis in Wasser zu steigern oder zu unterdr{\"u}cken. Die empirische Abfolge der Ionen in der Hofmeister-Serie kann jedoch bis heute nicht zweifelsfrei erkl{\"a}rt werden. Trotz weitreichender Bem{\"u}hungen, ein molekulares Verst{\"a}ndnis dieses Ph{\"a}nomens zu schaffen, konnte bisher keine Einigung {\"u}ber die zugrundeliegenden Mechanismen und die genauere Bestimmung und Lokalisierung der Wechselwirkung erzielt werden. Die resonante inelastische Weichr{\"o}ntgenstreuung (RIXS) kombiniert die beiden Methoden der R{\"o}ntgenemissions- (XES) und R{\"o}ntgenabsorptionsspektroskopie (XAS). So k{\"o}nnen mit RIXS Informationen sowohl {\"u}ber die besetzten als auch die unbesetzten elektronischen Zust{\"a}nde gesammelt und zu einem umfassenden Bild der elektronischen Struktur des Systems verkn{\"u}pft werden, was diese Methode zu einem vielversprechenden Werkzeug macht, etwas mehr Licht auf die Thematik zu werfen. Die in dieser Arbeit pr{\"a}sentierten Ergebnisse zielen deshalb darauf ab, ein verbessertes Verst{\"a}ndnis der Wechselwirkungen zwischen Salzen und Peptiden in w{\"a}ssriger L{\"o}sung zu schaffen. Hierf{\"u}r wird systematisch der Einfluss verschiedenster physikalischer Umgebungen auf die elektronische Struktur von kleinen Molek{\"u}len (Methanol und von Glycin abgeleitete Peptide) mittels Weichr{\"o}ntgenspektroskopie, unterst{\"u}tzt durch Dichtefunktionaltheorie (DFT) Rechnungen, untersucht. In einem ersten Schritt werden isolierte Molek{\"u}le ohne jeglicheWechselwirkung zu ihrer unmittelbaren Umgebung anhand von Methanol in der Gasphase als Modelsystem untersucht. Hierbei wird insbesondere der lokale und elementspezifische Charakter von RIXS demonstriert und die lokale elektronische Struktur von Methanols Hydroxyl- und Methylgruppe untersucht. Mithilfe von DFT-Rechnungen werden die beobachteten Emissionslinien in den XES-Spektren der Emission bestimmter Molek{\"u}lorbitale zugeordnet und deren relative Emissionsintensit{\"a}ten erl{\"a}utert. F{\"u}r eine resonante Anregung der ersten Resonanz an der Sauerstoff-K-Absorptionskante werden starke Isotopeneffekte beobachtet, die durch dynamische Prozesse an der Hydroxylgruppe erkl{\"a}rt werden k{\"o}nnen. Dies dient als hervorragendes Beispiel f{\"u}r m{\"o}gliche Auswirkungen, die eine lokale {\"A}nderung in der Geometrie oder Symmetrie des Molek{\"u}ls auf dessen elektronische Struktur haben kann. Im weiteren Verlauf dieser Arbeit wird das untersuchte Probensystem um die Aminos{\"a}ure Glycin und deren kleinste Peptide Diglycin und Triglycin, vorerst in ihrer kristallinen Form als Festk{\"o}rper, erweitert. Mithilfe von RIXS-Karten der Stickstoff- und Sauerstoff-K-Absorptionskanten wird erneut, unterst{\"u}tzt durch DFT-Rechnungen, ein umfassendes Bild der elektronischen Struktur der Molek{\"u}le gezeichnet. {\"A}hnlich zum Fall von Methanol werden die Emissionsspektren an der Stickstoff-K-Kante stark von dynamischen Prozessen an der protonierten Aminogruppe der Molek{\"u}le beeinflusst. Zudem wird gezeigt, dass RIXS gezielt dazu verwendet werden kann, das Stickstoffatom in der Peptidbindung anzuregen und die elektronische Struktur in dessen lokaler Umgebung zu untersuchen. Desweiteren wird ein einfaches Baukastenprinzip f{\"u}r XES-Spektren dazu genutzt, die spektralen Anteile der Emission aus {\"U}berg{\"a}ngen an den beiden Stickstoffatomen in Diglycin zu isolieren. In w{\"a}ssriger L{\"o}sung kann eine leichte Ver{\"a}nderung der elektronischen Struktur der Molek{\"u}le durch die Wechselwirkung mit benachbarten Wassermolek{\"u}len, vermutlich an den geladenen funktionellen Gruppen, beobachtet werden. Die Auswirkungen auf die XES-Spektren sind jedoch eher gering. Deutlich gr{\"o}ßere Ver{\"a}nderungen werden beobachtet, wenn man den Protonierungszustand der Molek{\"u}le {\"u}ber den pH-Wert der L{\"o}sung manipuliert. Sowohl die Protonierung der Carboxylgruppe f{\"u}r kleine pH-Werte als auch die Deprotonierung der Aminogruppe in basischer L{\"o}sung f{\"u}hren zu starken Ver{\"a}nderungen in den RIXS-Karten. In einer umfangreichen Untersuchung der XES-Spektren von Glycin als Funktion des pH-Wertes wird gezeigt, dass sich die {\"A}nderungen jedoch nicht nur {\"o}rtlich begrenzt auf die Umgebung der manipulierten funktionellen Gruppe, sondern auch auf die elektronische Struktur in weiter entfernten Bereichen des Molek{\"u}ls auswirken. Als Beispiel f{\"u}r Systeme in denen Hofmeister-Effekte beobachtet werden, werden zu guter Letzt gemischte w{\"a}ssrige L{\"o}sungen aus Diglycin und verschiedenen Salzen untersucht. Um den Einfluss verschiedener Kationen auf die elektronische Struktur der Diglycin Molek{\"u}le zu erfassen wird eine Reihe unterschiedlicher Chloride verwendet, wohingegen eine Reihe von Kaliumsalzen f{\"u}r die Untersuchung verschiedener Anionen herangezogen wird. In beiden F{\"a}llen werden ionenspezifische Auswirkungen auf die XES-Spektren von Diglycin beobachtet, die qualitativ der Sortierung innerhalb der Hofmeister-Serie folgen. Die beobachteten {\"A}nderungen deuten dabei darauf hin, dass Kationen unterschiedlich stark mit dem Sauerstoff in der Peptidbindung und dessen unmittelbarer Umgebung wechselwirken, wohingegen Anionen eine gesteigerte Affinit{\"a}t zur Aminogruppe von Diglycin aufweisen.}, subject = {Methanol}, language = {en} } @phdthesis{AlBaidhani2018, author = {Al-Baidhani, Mohammed}, title = {Spectroscopy as a tool to investigate the high energy optical properties of nanostructured magnetically doped topological insulator}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-157221}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2018}, abstract = {In this dissertation the electronic and high-energy optical properties of thin nanoscale films of the magnetic topological insulator (MTI) (V,Cr)y(BixSb1-x)2-yTe3 are studied by means of X-ray photoelectron spectroscopy (XPS) and electron energy-loss spectroscopy (EELS). Magnetic topological insulators are presently of broad interest as the combination of ferromagnetism and spin-orbit coupling in these materials leads to a new topological phase, the quantum anomalous Hall state (QAHS), with dissipation less conduction channels. Determining and controlling the physical properties of these complex materials is therefore desirable for a fundamental understanding of the QAHS and for their possible application in spintronics. EELS can directly probe the electron energy-loss function of a material from which one can obtain the complex dynamic dielectric function by means of the Kramers-Kronig transformation and the Drude-Lindhard model of plasmon oscillations. The XPS core-level spectra in (V,Cr)y(BixSb1-x)2-yTe3 are analyzed in detail with regards to inelastic background contributions. It is shown that the spectra can be accurately described based on the electron energy-loss function obtained from an independent EELS measurement. This allows for a comprehensive and quantitative analysis of the XPS data, which will facilitate future core-level spectroscopy studies in this class of topological materials. From the EELS data, furthermore, the bulk and surface optical properties were estimated, and compared to ab initio calculations based on density functional theory (DFT) performed in the GW approximation for Sb2Te3. The experimental results show a good agreement with the calculated complex dielectric function and the calculated energy-loss function. The positions of the main plasmon modes reported here are expected to be generally similar in other materials in this class of nanoscale TI films. Hence, the present work introduces EELS as a powerful method to access the high-energy optical properties of TI thin films. Based on the presented results it will be interesting to explore more systematically the effects of stoichiometry, magnetic doping, film thickness and surface morphology on the electron-loss function, potentially leading to a better understanding of the complex interplay of structural, electronic, magnetic and optical properties in MTI nanostructures.}, subject = {Topologischer Isolator}, language = {en} }