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The rich phase diagram of transition metal oxides essentially roots in the many body physics arising from strong Coulomb interactions within the underlying electron system.
Understanding such electronic correlation effects remains challenging for modern solid state physics, therefore experimental data is required for further progress in the field. For this reason, spectroscopic investigations of prototypical correlated materials are the scope of this thesis. The experimental methods focus on photoelectron spectroscopy, and the test materials are the correlated metal SrVO\(_3\) and the Mott insulator LaTiO\(_3\), both of which are fabricated as high quality thin films.
In SrVO\(_3\) thin films, a reduction of the film thickness induces a dimensional crossover from the metallic into the Mott insulating phase. In this thesis, an extrinsic chemical contribution from a surface over-oxidation is revealed that emerges additionally to the intrinsic change of the effective bandwidth usually identified to drive the transition. The two contributions are successfully disentangled by applying a capping layer that prevents the oxidation, allowing for a clean view on the dimensional crossover in fully stoichiometric samples. Indeed, these stoichiometric layers exhibit a higher critical thickness for the onset of the metallic phase than the bare and therefore over-oxidized thin films.
For LaTiO\(_3\) thin films, the tendency to over-oxidize is even stronger. An uncontrolled oxygen diffusion from the substrate into the film is found to corrupt the electronic properties of LaTiO\(_3\) layers grown on SrTiO\(_3\). The Mott insulating phase is only detected in stoichiometric films fabricated on more suitable DyScO\(_3\) substrates. In turn, it is demonstrated that a \(controlled\) incorporation of excess oxygen ions by increasing the oxygen growth pressure is an effective way of \(p\) doping the material which is used to drive the band filling induced Mott transition.
Gaining control of the oxygen stoichiometry in both materials allows for a systematic investigation of correlation effects in general and of the Mott transition in particular. The investigations are realized by various photoelectron spectroscopy techniques that provide a deep insight into the electronic structure. Resonant photoemission not only gives access to the titanium and vanadium related partial density of states of the valence band features, but also shows how the corresponding signal is enhanced by tuning the photon energy to the \(L\) absorption threshold. The enhanced intensity turns out to be very helpful for probing the Fermi surface topology and band dispersions by means of angular-resolved photoemission. The resulting momentum resolved electronic structure verifies central points of the theoretical description of the Mott transition, viz. the renormalization of the band width and a constant Luttinger volume in a correlated metal as the Mott phase is approached.
In oxidischen Heterostrukturen rufen Neuordnung von Ladung und Spin eine Vielzahl von unerwarteten physikalischen Eigenschaften hervor. Die Möglichkeit, Leitfähigkeit, Magnetismus oder auch Hochtemperatur-Supraleitung zu kontrollieren, machen diese künstlich hergestellten Materialien vor allem in Hinblick auf eine zukünftige Anwendung in der Mikroelektronik äußerst interessant. Dies erfordert jedoch ein grundsätzliches Verständnis für die zugrunde liegenden Mechanismen. Die vorliegende Doktorarbeit befasst sich mit photonengestützter Spektroskopie, die einen direkten Zugang zur elektronischen Struktur dieser Heterostruktursysteme ermöglicht. Ein weiteres Ziel ist es, geeignete spektroskopische Methoden zur Charakterisierung der vergrabenen Schichten zu etablieren.
Zwei prototypische oxidische Mehrschichtsysteme stehen im Zentrum der hier vorgestellten Untersuchungen. Das LaAlO3/SrTiO3-Heterostruktursystem weist ab einer kritischen LaAlO3-Filmdicke an der Grenzfläche ein zweidimensionales Elektronensystem mit hochmobilen Ladungsträgern auf. Als treibender Mechanismus wird die elektronische Rekonstruktion diskutiert. Im Rahmen dieser Arbeit wurde dieses zweidimensionale Elektronensystem mithilfe der Photoelektronenspektroskopie und der resonanten inelastischen Röntgenstreuung charakterisiert. Die daraus bestimmten Ladungsträgerdichten weisen im Vergleich mit Daten aus Transportmessungen auf eine Koexistenz von lokalisierten und mobilen Ladungsträgern an der Grenzfläche hin. Die Analyse von Rumpfniveau- und Valenzbandspektren zeigt, dass man zur Erklärung der experimentellen Resultate ein modifiziertes Bild der elektronischen Rekonstruktion benötigt, bei der Sauerstofffehlstellen an der LaAlO3-Oberfläche als Ladungsreservoir dienen könnten. Mithilfe der resonanten Photoelektronenspektroskopie war es möglich, die metallischen Zustände am chemischen Potential impulsaufgelöst zu spektroskopieren. So gelang es erstmals, die vergrabene Fermi-Fläche einer oxidischen Heterostruktur zu vermessen. Außerdem konnten Titan-artige Zustände identifiziert werden, die höchstwahrscheinlich durch Sauerstofffehlstellen im SrTiO3 lokalisiert sind. Diese werden als mögliche Quelle für den Ferromagnetismus interpretiert, der mit der supraleitenden Phase in der LaAlO3/SrTiO3-Heterostruktur koexistiert.
Bei dem anderen hier untersuchten Mehrschichtsystem handelt es sich um die LaNiO3-LaAlO3-Übergitterstruktur. Der Einbau des metallischen LaNiO3 in eine Heterostruktur ist aufgrund seiner Nähe zu einer korrelationsinduzierten isolierenden Phase hinsichtlich einer kontrollierten Ausbildung von neuartigen Phasen besonders interessant. In der Tat beobachtet man unterhalb einer LaNiO3-Schichtdicke von vier Einheitszellen einen kontinuierlichen Metall-Isolator-Übergang, der sich in den Valenzbandspektren durch einen Verlust an Quasiteilchenkohärenz äußert. Auch wenn die impulsaufgelösten
Daten am Fermi-Niveau durch Photoelektronenbeugung beeinflusst sind, so lässt sich dennoch eine Fermi-Fläche identifizieren. Ihre Topologie bietet die Möglichkeit eines Fermi-Flächen-Nestings mit der Ausbildung einer Spindichtewelle. Die Resultate unterstützen die Hinweise auf eine magnetische Ordnung im zweidimensionalen Grundzustand.
A plethora of novel material concepts are currently being investigated in the condensed matter research community. Some of them hold promise to shape our everyday world in a way that silicon-based semiconductor materials and the related development of semiconductor devices have done in the past. In this regard, the last decades have witnessed an explosion of studies concerned with so called ‘’quantum materials’’ with emerging novel functionalities. These could eventually lead to new generations of electronic and/or spintronic devices. One particular material class, the so called topological materials, play a central role. As far as their technological applicability is concerned, however, they are still facing outstanding challenges to date.
Predicted for the first time in 2005 and experimentally verified in 2007, two-dimensional topological insulators (2D TIs) (a.k.a. quantum spin Hall insulators) exhibit the outstanding property of hosting spin-polarized metallic states along the boundaries of the insulating 2D bulk material, which are protected from elastic single-particle backscattering and give rise to the quantum spin Hall effect (QSHE). Owing to these peculiar properties the QSHE holds promise for dissipationless charge and/or spin transport. However, also in today’s best 2D TIs the observation of the QSHE is still limited to cryogenic temperatures of maximum 100 K. Here, the discovery of bismuthene on SiC(0001) has marked a milestone towards a possible realization of the QSHE at or beyond room-temperature owing to the massively increased electronic bulk energy gap on the order of 1 eV. This thesis is devoted to and motivated by the goal of advancing its synthesis and to build a deeper understanding of its one-particle and two-particle electronic properties that goes beyond prior work.
Regarding the aspect of material synthesis, an improved growth procedure for bismuthene is elaborated that increases the domain size of the material considerably (by a factor of ≈ 3.2 - 6.5 compared to prior work). The improved film quality is an important step towards any future device application of bismuthene, but also facilitates all further basic studies of this material.
Moreover, the deposition of magnetic transition metals (Mn and Co) on bismuthene is investigated. Thereby, the formation of ordered magnetic Bi-Mn/Co alloys is realized, their structure is resolved with scanning tunneling microscopy (STM), and their pristine electronic properties are resolved with scanning tunneling spectroscopy (STS) and photoemission spectroscopy (PES). It is proposed that these ordered magnetic Bi-Mn/Co-alloys offer the potential to study the interplay between magnetism and topology in bismuthene in the future.
In this thesis, a wide variety of spectroscopic techniques are employed that aim to build an understanding of the single-particle, as well as two-particle level of description of bismuthene's electronic structure. The techniques involve STS and angle-resolved PES (ARPES) on the one hand, but also optical spectroscopy and time-resolved ARPES (trARPES), on the other hand. Moreover, these experiments are accompanied by advanced numerical modelling in form of GW and Bethe-Salpeter equation calculations provided by our theoretical colleagues. Notably, by merging many experimental and theoretical techniques, this work sets a benchmark for electronic structure investigations of 2D materials in general.
Based on the STS studies, electronic quasi-particle interferences in quasi-1D line defects in bismuthene that are reminiscent of Fabry-Pérot states are discovered. It is shown that they point to a hybridization of two pairs of helical boundary modes across the line defect, which is accompanied by a (partial) lifting of their topological protection against elastic single-particle backscattering.
Optical spectroscopy is used to reveal bismuthene's two-particle elecronic structure. Despite its monolayer thickness, a strong optical (two-particle) response due to enhanced electron-hole Coulomb interactions is observed. The presented combined experimental and theoretical approach (including GW and Bethe-Salpeter equation calculations) allows to conclude that two prominent optical transitions can be associated with excitonic transitions derived from the Rashba-split valence bands of bismuthene. On a broader scope this discovery might promote further experiments to elucidate links of excitonic and topological physics.
Finally, the excited conduction band states of bismuthene are mapped in energy and momentum space employing trARPES on bismuthene for the first time. The direct and indirect band gaps are succesfully extracted and the effect of excited charge carrier induced gap-renormalization is observed. In addition, an exceptionally fast excited charge carrier relaxation is identified which is explained by the presence of a quasi-metallic density of states from coupled topological boundary states of domain boundaries.