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Self-organized nanowires at semiconductor surfaces offer the unique opportunity to study electrons in reduced dimensions. Notably the dimensionality of the system determines it’s electronic properties, beyond the quasiparticle description. In the quasi-one-dimensional (1D) regime with weak lateral coupling between the chains, a Peierls instability can be realized. A nesting condition in the Fermi surface leads to a backfolding of the 1D electron band and thus to an insulating state. It is accompanied by a charge density wave (CDW) in real space that corresponds to the nesting vector. This effect has been claimed to occur in many surface-defined nanowire systems, such as the In chains on Si(111) or the Au reconstructions on the terraced Si(553) and Si(557) surfaces. Therefore a weak coupling between the nanowires in these systems has to be concluded. However theory proposes another state in the perfect 1D limit, which is completely destroyed upon slight coupling to higher dimensions. In this so-called Tomonaga-Luttinger liquid (TLL) state, the quasiparticle description of the Fermi liquid breaks down. Since the interaction between the electrons is enhanced due to the strong confinement, only collective excitations are allowed. This leads to novel effects like spin charge separation, where spin and charge degrees of freedom are decoupled and allowed to travel independently along the 1D-chain. Such rare state has not been realized at a surface until today. This thesis uses a novel approach to realize nanowires with improved confinement by studying the Au reconstructed Ge(001) surface. A new cleaning procedure using piranha solution is presented, in order to prepare a clean and long-range ordered substrate. To ensure optimal growth of the Au nanowires the phase diagram is extensively studied by scanning tunneling microscopy (STM) and low energy electron diffraction (LEED). The structural elements of the chains are revealed and described in high detail. Remarkably a structural phase transition of the delicate wire structure is found to occur above room temperature. Due to the lack of energy gaps a Peierls transition can be excluded as its origin. The transition is rather determined as 3D Ising type and therefore includes the substrate as well. Two hallmark properties of a TLL are found in the Au/Ge(001) wires by spectroscopic studies: Power-law suppression of the density of states (DOS) and universal scaling. This impressively proves the existence of a TLL in these chains and opens up a gateway to an atomic playground. Local studies and manipulations of a TLL state become possible for the first time. These comprise (i) doping by alkaline atoms, (ii) studies on chain ends and (iii) tunable coupling between the chains by additional Au atoms. Most importantly these manipulations offer input and test for theoretical models and predictions, and are thereby ultimately advancing the field of correlated electrons.
Atomare Ketten, sogenannte Nano-Drähte, entstehen durch Selbstorganisation adsorbierter Metallatome auf einer Halbleiteroberfläche. Aufgrund der starken räumlichen Einschränkung der Ladungsträger innerhalb dieser Ketten entsteht dabei oftmals eine metallische Bandstruktur mit starker Anisotropie. Im Falle phononischer Ankopplung an das Substrat kann so ein eindimensionales (1D) Metall instabil gegen eine periodische Gitterverzerrung werden, bei der es zu einer Ausbildung einer Energielücke kommt. Dieser Metall-Isolator-Übergang wird dabei als Peierls Übergang bezeichnet. Für verschwindend geringe Kopplung der Ketten untereinander bzw. an das Substrat, d.h. im strikt eindimensionalen Fall, bricht das Fermi Flüssigkeitsmodell für dreidimensionale (3D) Metalle zusammen. Dessen Quasiteilchen werden durch kollektive Anregungen von Spin und Ladung ersetzt. Diesen Zustand bezeichnet man als Tomonaga-Luttinger Flüssigkeit. Beide Phänomene, Peierlsübergang und Tomonaga-Luttinger Flüssigkeit lassen sich anhand der elektronischen Bandstruktur experimentell nachweisen. Bei dem hier untersuchten Probensystem handelt es sich um Gold-induzierte Nandrähte auf der Germanium (001)-Oberfläche, kurz Au/Ge(001). Deren Wachstum erfolgt epitaktisch entlang der durch das Substrat vorgegebenen Dimer-Reihen, welche die freie Germaniumoberfläche in Form einer (2×1)-Symmetrie einnimmt. Die abwechselnde Stapelfolge ABAB des Substrates führt dabei zu zwei unterschiedlichen Drahtrichtungen, die jeweils um 90° zueinander gedreht sind, wenn man eine Einfachstufe von 1.4 A von einer A-Terrasse auf eine B-Terrasse oder umgekehrt geht. Die vorherrschende Kinetik während der Gold-Deposition bzw. das Benetzungsverhalten ermöglicht dabei eine vollständige Bedeckung der vormals freien Oberfläche mit Nanodrähten, deren Abmessungen einzig und allein durch Defekte bzw. die Größe der darunterliegenden Ge-Terrasse begrenzt sind. Um die Längenskala der Subtrat-Terrassen zu optimieren, wurde eine Reinigungsprozedur für Ge (001) entwickelt, bei der nass-chemisches Ätzen mit anschliessender Trocken-Oxidation zum Einsatz kommt. Die darauf aufbauenden Nanodrähte wurden im Anschluss mittels winkelaufgelöster Photoelektronenspektroskopie auf ihre elektronische Bandstruktur untersucht. Dabei wurden zwei neuartige Zustände beobachtet: ein metallischer, zweidimensionaler Loch-Zustand, der seinen Ursprung höchstwahrscheinlich in tieferen Schichten des Germaniums hat; und ein eindimensionaler Oberflächenzustand mit elektronenartiger Dispersion, dessen bandintegrierte Spektralfunktion von der einer Fermiflüssigkeit abweicht. Stattdessen wird ein exponentieller Abfall des spektralen Gewichtes als Funktion der Energie zum Ferminiveau hin beobachtet. Dieses Verhalten kann über einen weiten Temperaturbereich beobachtet werden und lässt sich mit der Tomonaga-Luttinger Flüssigkeit für strikt eindimensionale Systeme erklären. Zum weiteren theoretischen Verständnis dieses Phänomes, beispielsweise durch Bandstrukuturrechnungen mittels Dichte-Funktional-Theorie, bedarf es der genauen Kenntnis der atomaren Struktur dieser Ketten. Selbige wurde mittels Oberflächenröntgenbeugung (engl. surface x-ray diffraction, SXRD) untersucht. Auf Basis der gewonnenen Patterson-Karte lassen sich Rückschlüsse auf die interatomaren Abstände der Goldatome untereinander in der Einheitszelle ziehen. Dies stellt einen ersten wichtigen Schritt auf dem Weg zu einem vollständigen Strukturmodell dar. Darüber hinaus wurden erste vielversprechende Schritte unternommen, das Nanodrahtsystem kontrolliert zu manipulieren. Durch geringfügige, zusätzliche Deposition von Kalium konnte dabei eine schrittweise Erhöhung der Bandfüllung erzielt werden. Für weitergehende Kaliumanlagerungen im (Sub-)Monolagenbereich konnte sogar eine neue Rekonstruktion erzielt werden.
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.
Two-dimensional triangular lattices of group IV adatoms on semiconductor substrates provide a rich playground for the investigation of Mott-Hubbard physics. The possibility to combine various types of adatoms and substrates makes members of this material class versatile model systems to study the influence of correlation strength, band filling and spin-orbit coupling on the electronic structure - both experimentally and with dedicated many-body calculation techniques. The latter predict exotic ground states such as chiral superconductivity or spin liquid behavior for these frustrated lattices, however, experimental confirmation is still lacking. In this work, three different systems, namely the \(\alpha\)-phases of Sn/SiC(0001), Pb/Si(111), and potassium-doped Sn/Si(111) are investigated with scanning tunneling microscopy and photoemission spectroscopy in this regard. The results are potentially relevant for spintronic applications or quantum computing.
For the novel group IV triangular lattice Sn/SiC(0001), a combined experimental and theoretical study reveals that the system features surprisingly strong electronic correlations because they are boosted by the substrate through its partly ionic character and weak screening capabilities. Interestingly, the spectral function, measured for the first time via angle-resolved photoemission, does not show any additional superstructure beyond the intrinsic \(\sqrt{3} \times \sqrt{3} R30^{\circ}\) reconstruction, thereby raising curiosity regarding the ground-state spin pattern.
For Pb/Si(111), preceding studies have noted a phase transition of the surface reconstruction from \(\sqrt{3} \times \sqrt{3} R30^{\circ}\) to \(3 \times 3\) at 86 K. In this thesis, investigations of the low-temperature phase with high-resolution scanning tunneling microscopy and spectroscopy unveil the formation of a charge-ordered ground state. It is disentangled from a concomitant structural rearrangement which is found to be 2-up/1-down, in contrast to previous predictions. Applying an extended variational cluster approach, a phase diagram of local and nonlocal Coulomb interactions is mapped out. Based on a comparison of theoretical spectral functions with scattering vectors found via quasiparticle interference, Pb/Si(111) is placed in said phase diagram and electronic correlations are found to be the driving force of the charge-ordered state.
In order to realize a doped Mott insulator in a frustrated geometry, potassium was evaporated onto the well-known correlated Sn/Si(111) system. Instead of the expected insulator-to-metal transition, scanning tunneling spectroscopy data indicates that the electronic structure of Sn/Si(111) is only affected locally around potassium atoms while a metallization is suppressed. The potassium atoms were found to be adsorbed on empty \(T_4\) sites of the substrate which eventually leads to the formation of two types of K-Sn alloys with a relative potassium content of 1/3 and 1/2, respectively. Complementary measurements of the spectral function via angle-resolved photoemission reveal that the lower Hubbard band of Sn/Si(111) gradually changes its shape upon potassium deposition. Once the tin and potassium portion on the surface are equal, this evolution is complete and the system can be described as a band insulator without the need to include Coulomb interactions.
Magnetic systems underlie the physics of quantum mechanics when reaching the limit of few or even single atoms. This behavior limits the minimum size of magnetic bits in data storage devices as spontaneous switching of the magnetization leads to the loss of information. On the other hand, exactly these quantum mechanic properties allow to use such systems in quantum computers. Proposals to realize qubits involve the spin states of single atoms as well as topologically protected Majorana zero modes, that emerge in coupled systems of magnetic atoms in proximity to a superconductor. In order to implement and control the proposed applications, a detailed understanding of atomic spins and their interaction with the environment is required.
In this thesis, two different systems of magnetic adatoms coupled to metallic and superconducting surfaces are studied by means of scanning tunneling microscopy (STM) and spectroscopy: Co atoms on the clean Cu(111) were among the first systems exhibiting signatures of the Kondo effect in an individual atom. Yet, a recent theoretical work proposed an alternative interpretation of these early experimental results, involving a newly described many-body state. Spin-averaged and -polarized experiments in high magnetic fields presented in this thesis confirm effects beyond the Kondo effect that determine the physics in these Co atoms and suggest a potentially even richer phenomenology than proposed by theory.
The second studied system are single and coupled Fe atoms on the superconducting Nb(110) surface. Magnetic impurities on superconducting surfaces locally induce Yu-Shiba-Rusinov (YSR) states inside the superconducting gap due to their pair breaking potential. Coupled systems of such impurities exhibit YSR bands and, if the bands cross the Fermi level such that the band structure is inverted, host Majorana zero modes. Using the example of Fe atoms on Nb(110), the YSR states’ dependence on the adatom–substrate interaction as well as the interatomic YSR state coupling is investigated. In the presence of oxygen on the Nb surface, the adatom–substrate interaction is shown to be heavily modified and the YSR states are found to undergo a quantum phase transition, which can be directly linked to a modified Kondo screening.
STM tips functionalized with CO molecules allow to resolve self-assembled one-dimensional chains of Fe atoms on the clean Nb(110) surface to study the YSR states’ coupling. Mapping out the states’ wave functions reveals their symmetry, which is shown to alter as a function of the states’ energy and number of atoms in the chain. These experimental results are reproduced in a simple tight-binding model, demonstrating a straightforward possibility to describe also more complex YSR systems toward engineered, potentially topologically non-trivial states.