71.70.Ej Spin-orbit coupling, Zeeman and Stark splitting, Jahn-Teller effect
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In pursuit of a novel generation of devices, exploration of spin properties of the particles is needed. Spintronics is a modern field in physics which exploits spin properties to be used in addition to the charge degree of freedom. Since the conductivity mismatch problem presents a fundamental obstacle for electrical spin injection from a ferromagnetic metal into a diffusive semiconductor [SFM+00], other means for injecting spin-polarized carriers must be used. With a tunnel contact, it is possible to achieve a highly spin-polarized room-temperature tunnel injection [JWS+05]. We used a novel approach and applied magnetic RTDs for spin manipulation. In this work, properties of all-II-VI magnetic resonant tunneling diodes (RTDs), as applied to spintronics, were reported. Growth conditions were optimized to increase the peak-to-valley ratio, and the design of the RTDs was optimized for observation of spin related transport effects. When an external magnetic field was applied, spin manipulation became possible. Selforganized CdSe quantum structures were grown and investigated using optical means. After embedding them into a (Zn,Be)Se tunneling barrier, the properties were assessed by the resonant tunneling.
Within the scope of this thesis, spin related transport phenomena have been investigated in HgTe/HgCdTe quantum well structures. This material exhibits peculiar band structure properties, which result in a strong spin-orbit interaction of the Rashba type. An inverted band structure, i.e., a reversed ordering of the energy states in comparison to common semiconductors, is obtained for quantum well layers above a critical thickness. Furthermore, the band structure properties can be controlled in the experiments by moderate gate voltages. Most prominently, the type of carriers in HgTe quantum wells can be changed from n to p due to the narrow energy gap. Along with the inverted band structure, this unique transition is the basis for the demonstration of the Quantum Spin Hall state, which is characterized by the existence of two one-dimensional spin-polarized edge states propagating in opposite directions, while the Fermi level in the bulk is in the energy gap. Since elastic scattering is suppressed by time reversal symmetry, a quantized conductance for charge and spin transport is predicted. Our experiments provide the first experimental demonstration of the QSH state. For samples with characteristic dimensions below the inelastic mean free path, charge conductance close to the expected value of 2e^2/h has been observed. Strong indication for the edge state transport was found in the experiments as well. For large samples, potential fluctuations lead to the appearance of local n-conducting regions which are considered to be the dominant source of backscattering. When time reversal symmetry is broken in a magnetic field, elastic scattering becomes possible and conductance is significantly suppressed. The suppression relies on a dominant orbital effect in a perpendicular field and a smaller Zeeman-like effect present for any field direction. For large perpendicular fields, a re-entrant quantum Hall state appears. This unique property is directly related to the non-trivial QSH insulator state. While clear evidence for the properties of charge transport was provided, the spin properties could not be addressed. This might be the goal of future experiments. In another set of experiments, the intrinsic spin Hall effect was studied. Its investigation was motivated by the possibility to create and to detect pure spin currents and spin accumulation. A non-local charging attributed to the SHE has been observed in a p-type H-shaped structure with large SO interaction, providing the first purely electrical demonstration of the SHE in a semiconductor system. A possibly more direct way to study the spin Hall effects opens up when the spin properties of the QSH edge states are taken into account. Then, the QSH edge states can be used either as an injector or a detector of spin polarization, depending on the actual configuration of the device. The experimental results indicate the existence of both intrinsic SHE and the inverse SHE independently of each other. If a spin-polarized current is injected from the QSH states into a region with Rashba SO interaction, the precession of the spin can been observed via the SHE. Both the spin injection and precession might be used for the realization of a spin-FET similar to the one proposed by Datta and Das. Another approach for the realization of a spin-based FET relies on a spin-interference device, in which the transmission is controlled via the Aharonov-Casher phase and the Berry phase, both due to the SO interaction. In the presented experiments, ring structures with tuneable SO coupling were studied. A complex interference pattern is observed as a function of external magnetic field and gate voltage. The dependence on the Rashba splitting is attributed to the Aharonov-Casher phase, whereas effects due to the Berry phase remain unresolved. This interpretation is confirmed by theoretical calculations, where multi-channel transport through the device has been assumed in agreement with the experimental results. Thus, our experiments provide the first direct observation of the AC effect in semiconductor structures. In conclusion, HgTe quantum well structures have proven to be an excellent template for studying spin-related transport phenomena: The QSHE relies on the peculiar band structure of the material and the existence of both the SHE and the AC effect is a consequence of the substantial spin-orbit interaction. While convincing results have been obtained for the various effects, several questions can not be fully answered yet. Some of them may be addressed by more extensive studies on devices already available. Other issues, however, ask, e.g., for further advances in sample fabrication or new approaches by different measurements techniques. Thus, future experiments may provide new, compelling insights for both the effects discussed in this thesis and, more generally, other spin-orbit related transport properties.
The surface electronic structure of the narrow-gap seminconductor BiTeI exhibits a large Rashba-splitting which strongly depends on the surface termination. Here we report on a detailed investigation of the surface morphology and electronic properties of cleaved BiTeI single crystals by scanning tunneling microscopy, photoelectron spectroscopy (ARPES, XPS), electron diffraction (SPA-LEED) and density functional theory calculations. Our measurements confirm a previously reported coexistence of Te- and I-terminated surface areas originating from bulk stacking faults and find a characteristic length scale of ~100 nm for these areas. We show that the two terminations exhibit distinct types of atomic defects in the surface and subsurface layers. For electronic states resided on the I terminations we observe an energy shift depending on the time after cleavage. This aging effect is successfully mimicked by depositon of Cs adatoms found to accumulate on top of the I terminations. As shown theoretically on a microscopic scale, this preferential adsorbing behaviour results from considerably different energetics and surface diffusion lengths at the two terminations. Our investigations provide insight into the importance of structural imperfections as well as intrinsic and extrinsic defects on the electronic properties of BiTeI surfaces and their temporal stability.
Spin-Bahn-Kopplung in Grenzschichten: Mikroskopische Zusammenhänge und Strategien zur Manipulation
(2012)
Die vorliegende Arbeit befasst sich mit dem Einfluss der Spin-Bahn-Kopplung (SBK) auf die zweidimensionale elektronische Struktur von Festkörperoberflächen und -grenzflächen. Aufgrund der strukturellen Inversionsasymmetrie kann die SBK in derartigen Systemen eine Spinaufspaltung der elektronischen Zustände herbeiführen und eine charakteristische impulsabhängige Spinstruktur induzieren (Rashba-Effekt). Die Studien in dieser Arbeit sind zum einen darauf gerichtet, das physikalische Verständnis der mikroskopischen Zusammenhänge, die die Spinaufspaltung und die Spinorientierung elektronischer Zustände an Grenzflächen bestimmen, zu verbessern. Des Weiteren sollen Möglichkeiten zur Manipulation der SBK durch kontrollierte Variationen chemischer und struktureller Grenzflächenparameter erforscht werden. Als Modellsysteme für diese Fragestellungen dienen die isostrukturellen Oberflächenlegierungen BiCu2 und BiAg2, deren elektronische Struktur mittels winkelaufgelöster Photoelektronenspektroskopie (ARPES) und spinaufgelöster ARPES untersucht wird. Die Resultate der Experimente werden mithilfe von ab initio-Rechnungen und einfacheren Modellbetrachtungen interpretiert. Die Arbeit schließt mit einer ausblickenden Präsentation von Experimenten zu dem topologischen Isolator Bi2Se3(0001). Vergleichende ARPES-Messungen zu BiAg2/Ag(111) und BiCu2/Cu(111) zeigen, dass bereits geringe Unterschiede in der Grenzschichtmorphologie die Größe der Spinaufspaltung in der elektronischen Struktur um ein Vielfaches verändern können. Zudem belegen spinaufgelöste Experimente eine invertierte Spinorientierung der elektronischen Zustände in BiCu2 im Vergleich mit dem Referenzsystem Au(111). Beide Resultate können durch eine theoretische Analyse des Potentialprofils und der elektronischen Ladungsverteilung senkrecht zu der Grenzfläche in Kombination mit einfachen Modellbetrachtungen verstanden werden. Es stellt sich heraus, dass Asymmetrien in der Ladungsverteilung das direkte mikroskopische Bindeglied zwischen der Spinstruktur des elektronischen Systems und den strukturellen und chemischen Parametern der Grenzschicht bilden. Weitergehende ARPES-Experimente zeigen, dass die spinabhängige elektronische Struktur zudem signifikant durch die Symmetrie des Potentials parallel zu der Grenzflächenebene beeinflusst wird. Eine Manipulation der SBK wird in BiCu2 durch die Deposition von Adatomen erreicht. Hierdurch gelingt es, die Spinaufspaltung sowohl zu vergrößern (Na-Adsorption) als auch zu verringern (Xe-Adsorption). ARPES-Experimente an dem ternären Schichtsystem BiAg2/Ag/Au(111) belegen erstmalig eine Kopplung zwischen elektronischen Bändern mit entgegengesetztem Spincharakter in einem zweidimensionalen System mit Spinaufspaltung (Interband-Spin-Bahn-Kopplung). Der zugrundeliegende Kopplungsmechanismus steht in bemerkenswerter Analogie zu den Auswirkungen der SBK auf die spinpolarisierte elektronische Struktur in ferromagnetischen Systemen. Variationen in der Schichtdicke des Ag-Substratfilms erlauben es, die Stärke der Interband-SBK zu manipulieren.