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Metal nanostructures have been known for a long time to exhibit optical resonances via localized surface plasmons. The high electric fields in close proximity to the metal surface have prospects to dramatically change the dynamics of electronic transitions, such as an enhanced spontaneous decay rate of a single emitter. However, there have been two major issues which impede advances in the experimental realization of enhanced light-matter interaction. (i) The fabrication of high-quality resonant structures requires state-of-the-art patterning techniques in combination with superior materials. (ii) The tiny extension of the optical near-field requires precise control of the single emitter with respect to the nanostructure. This work demonstrates a solution to these problems by combining scanning probe and optical confocal microscopy. Here, a novel type of scanning probe is introduced which features a tip composed of the edge of a single crystalline gold sheet. The patterning via focused ion beam milling makes it possible to introduce a plasmonic nanoresonator directly at the apex of the tip. Numerical simulations demonstrate that the optical properties of this kind of scanning probe are ideal to analyze light-matter interaction. Detailed experimental studies investigate the coupling mechanism between a localized plasmon and single colloidal quantum dots by dynamically changing coupling strength via their spatial separation. The results have shown that weak interaction affects the shape of the fluorescence spectrum as well as the polarization. For the best probes it has been found that it is possible to reach the strong coupling regime at the single emitter level at room temperature. The resulting analysis of the experimental data and the proposed theoretical models has revealed the differences between the established far-field coupling and near-field coupling. It has been found that the broad bandwidth of plasmonic resonances are able to establish coherent coupling to multiple transitions simultaneously giving rise to an enhanced effective coupling strength. It has also been found that the current model to numerically calculate the effective mode volume is inaccurate in case of mesoscopic emitters and strong coupling. Finally, light-matter interaction is investigated by the means of a quantum-dot-decorated microtubule which is traversing a localized nearfield by gliding on kinesin proteins. This biological transport mechanism allows the parallel probing of a meta-surface with nm-precision. The results that have been put forward throughout this work have shed new light on the understanding of plasmonic light-matter interaction and might trigger ideas on how to more efficiently combine the power of localized electric fields and novel excitonic materials.
Due to their complex chemical structure transition metal oxides display many fascinating properties which conventional semiconductors lack.
For this reason transition metal oxides hold a lot of promise for novel electronic functionalities.
Just as in conventional semiconductor heterostructures, the interfaces between different materials play a key role in oxide electronics.
The textbook example is the (001) interface between the band insulators LaAlO\(_3\) and SrTiO\(_3\) at which a two-dimensional electron system (2DES) forms.
In order to utilize such a 2DES in prospective electronic devices, it is vital that the electronic properties of the interface can be controlled and manipulated at will.
Employing photoelectron spectroscopy as well as electronic transport measurements, this thesis examines how such interface engineering can be realized in the case of the LaAlO\(_3\)/SrTiO\(_3\) heterostructure:
By photoemission we manage to unambiguously distinguish the different mechanisms by which SrTiO\(_3\) can be doped with electrons.
An electronic reconstruction is identified as the driving mechanism to render stoichiometric LaAlO\(_3\)/SrTiO\(_3\) interfaces metallic.
The doping of the LaAlO\(_3\)/SrTiO\(_3\) heterointerface can furthermore be finely adjusted by changing the oxygen vacancy \(V_{\mathrm{O}}\) concentration in the heterostructure.
Combining intense x-ray irradiation with oxygen dosing, we even achieve control over the \(V_{\mathrm{O}}\) concentration and, consequently, the doping in the photoemission experiment itself.
Exploiting this method, we investigate how the band diagram of SrTiO\(_3\)-based heterostructures changes as a function of the \(V_{\mathrm{O}}\) concentration and temperature by hard x-ray photoemission spectroscopy.
With the band bending in the SrTiO\(_3\) substrate changing as a function of the \(V_{\mathrm{O}}\) concentration, the interfacial band alignment is found to vary as well.
The relative permittivity of the SrTiO\(_3\) substrate and, in particular, its dependence on temperature and electric field is identified as one of the essential parameters determining the electronic interface properties.
That is also why the sample temperature affects the charge carrier distribution.
The mobile charge carriers are shown to shift toward the SrTiO\(_3\) bulk when the sample temperature is lowered.
This effect is, however, only pronounced if the total charge carrier concentration is small.
At high charge carrier concentrations the charge carriers are always confined to the interface, independent of the sample temperature.
The dependence of the electronic interface properties on the \(V_{\mathrm{O}}\) concentration is also investigated by a complementary method, viz. by electronic transport measurements.
These experiments confirm that the mobile charge carrier concentration increases concomitantly to the \(V_{\mathrm{O}}\) concentration.
The mobility of the charge carriers changes as well depending on the \(V_{\mathrm{O}}\) concentration.
Comparing spectroscopy and transport results, we are able to draw conclusions about the processes limiting the mobility in electronic transport.
We furthermore build a memristor device from our LaAlO\(_3\)/SrTiO\(_3\) heterostructures and demonstrate how interface engineering is used in practice in such novel electronic applications.
This thesis furthermore investigates how the electronic structure of the 2DES is affected by the interface topology:
We show that, akin to the (001) LaAlO\(_3\)/SrTiO\(_3\) heterointerface, an electronic reconstruction also renders the (111) interface between LaAlO\(_3\) and SrTiO\(_3\) metallic.
The change in interface topology becomes evident in the Fermi surface of the buried 2DES which is probed by soft x-ray photoemission.
Based on the asymmetry in the Fermi surface, we estimate the extension of the conductive layer in the (111)-oriented LaAlO\(_3\)/SrTiO\(_3\) heterostructure.
The spectral function measured furthermore identifies the charge carriers at the interface as large polarons.
Quantencomputer können manche Probleme deutlich effizienter lösen als klassische Rechner. Bisherige Umsetzungen leiden jedoch an einer zu geringen Dekohärenzzeit, weshalb die Lebenszeit der Quantenzustände einen limitierenden Faktor darstellt. Topologisch geschützte Anregungen, wie Majorana-Fermionen, könnten hingegen dieses Hindernis überwinden. Diese lassen sich beispielsweise in topologischen Supraleitern realisieren. Bis zum jetzigen Zeitpunkt existieren nur wenige Materialien, die dieses Phänomen aufweisen. Daher ist das Verständnis der elektronischen Eigenschaften für solche Verbindungen von großer Bedeutung.
In dieser Dissertation wird die Koexistenz von Supraleitung an der Probenoberfläche und topologischem Oberflächenzustand (engl. topological surface state, TSS) auf potentiellen topologischen Supraleitern überprüft. Diese beiden Bedingungen sind essentiell zur Ausbildung von topologischer Supraleitung in zeitumkehrgeschützten Systemen. Hierzu wird mittels Landaulevelspektroskopie und Quasiteilcheninterferenz das Vorhandensein des TSS am Ferminiveau auf Tl$_{x}$Bi$_{2}$Te$_{3}$ und Nb$_{x}$Bi$_{2}$Se$_{3}$ verifiziert, die mittels Transportmessungen als supraleitend identifiziert wurden. Anschließend folgen hochaufgelöste Spektroskopien an der Fermienergie, um die supraleitenden Eigenschaften zu analysieren.
Zur Interpretation der analysierten Eigenschaften wird zu Beginn der Ni-haltige Schwere-Fermion-Supraleiter TlNi$_{2}$Se$_{2}$ untersucht, der eine vergleichbare Übergangstemperatur besitzt. Anhand diesem werden die gängigen Messmethoden der Rastertunnelmikroskopie und -spektroskopie für supraleitende Proben vorgestellt und die Leistungsfähigkeit der Messapparatur demonstriert. Im Einklang mit der Literatur zeigt sich ein $s$-Wellencharakter des Paarungsmechanismus sowie die Formation eines für Typ~II-Supraleiter typischen Abrikosov-Gitters in schwachen externen Magnetfeldern.
Im folgenden Teil werden die potentiellen topologischen Supraleiter Tl$_{x}$Bi$_{2}$Te$_{3}$ und Nb$_{x}$Bi$_{2}$Se$_{3}$ begutachtet, für die eindeutig ein TSS bestätigt wird. Allerdings weisen beide Materialien keine Oberflächensupraleitung auf, was vermutlich durch eine Entkopplung der Oberfläche vom Volumen durch Bandverbiegung zu erklären ist. Unbeabsichtigte Kollisionen der Spitze mit der Probe führen jedoch zu supraleitenden Spitzen, die wesentlich erhöhte Werte für die kritische Temperatur und das kritische Feld zeigen.
Der letzte Abschnitt widmet sich dem supraleitenden Substrat Nb(110), für den der Reinigungsprozess erläutert wird. Hierbei sind kurze Heizschritte bis nahe des Schmelzpunktes nötig, um die bei Umgebungsbedingungen entstehende Sauerstoffrekonstruktion effektiv zu entfernen. Des Weiteren werden die elektronischen Eigenschaften untersucht, die eine Oberflächenresonanz zum Vorschein bringen. Hochaufgelöste Messungen lassen eine durch die BCS-Theorie gut repräsentierte Struktur der supraleitenden Energielücke erkennen. Magnetfeldabhängige Experimente offenbaren zudem eine mit der Kristallstruktur vereinbare Anisotropie des Paarungspotentials. Mit diesen Erkenntnissen kann Nb(110) zukünftig als Ausgang für das Wachstum von topologischen Supraleitern herangezogen werden.