@phdthesis{Maass2017, author = {Maaß, Henriette}, title = {Spin-dependence of angle-resolved photoemission from spin-orbit split surface states}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-151025}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2017}, abstract = {Spin- and angle-resolved photoelectron spectroscopy is the prime method to investigate spin polarized electronic states at solid state surfaces. In how far the spin polarization of an emitted photoelectron reflects the intrinsic spin character of an electronic state is the main question in the work at hand. It turns out that the measured spin polarization is strongly influenced by experimental conditions, namely by the polarization of the incoming radiation and the excitation energy. The photoemission process thus plays a non-negligible role in a spin-sensitive measurement. This work is dedicated to unravel the relation between the result of a spin-resolved measurement and the spin character in the ground state and, therefore, to gain a deep understanding of the spin-dependent photoemission process. Materials that exhibit significant spin-splittings in their electronic structure, owing to a strong spin-orbit coupling, serve as model systems for the investigations in this work. Therefore, systems with large Rashba-type spin-splittings as BiTeI(0001) and the surface alloys BiAg2/Ag(111) and PbAg2/Ag(111) are investigated. Likewise, the surface electronic structure of the topological insulators Bi2Te2Se(0001) and Bi2Te3(0001) are analyzed. Light polarization dependent photoemission experiments serve as a probe of the orbital composition of electronic states. The knowledge of the orbital structure helps to disentangle the spin-orbital texture inherent to the different surface states, when in addition the spin-polarization is probed. It turns out that the topological surface state of Bi2Te2Se(0001) as well as the Rashba-type surface state of BiTeI(0001) exhibit chiral spin-textures associated with the p-like in-plane orbitals. In particular, opposite chiralities are coupled to either tangentially or radially aligned p-like orbitals, respectively. The results presented here are thus evidence that a coupling between spin- and orbital part of the wave function occurs under the influence of spin-orbit coupling, independent of the materials topology. Systematic photon energy dependent measurements of the out-of-plane spin polarization of the topological surface state of Bi2Te3(0001) reveal a strong dependence and even a reversal of the sign of the photoelectron spin polarization with photon energy. Similarly, the measured spin component perpendicular to the wave vector of the surface state of BiAg2/Ag(111) shows strong modulations and sign reversals when the photon energy is changed. In BiAg2/Ag(111) the variations in the photoelectron spin polarization are accompanied by significant changes and even a complete suppression of the photoemission intensity from the surface state, indicating that the variations of the spin polarization are strongly related to the photoemission cross section. This relation is finally analyzed in detail by employing a simple model, which is based on an evaluation of the transition matrix elements that describe the presented experiments. The model shows that the underlying cause for the observed photoelectron spin reversals can be found in the coupling of the spin structure to the spatial part of the initial state wave function, revealing the crucial role of spin-orbit interaction in the initial state wave function. The model is supported by ab initio photoemission calculations, which show strong agreement with the experimental results.}, subject = {Photoelektronenspektroskopie}, language = {en} }