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The Josephson effect describes the generic appearance of a supercurrent in a weak link between two superconductors. Its exact physical nature deeply influences the properties of the supercurrent. In recent years, considerable efforts have focused on the coupling of superconductors to the surface states of a three-dimensional topological insulator. In such a material, an unconventional induced p-wave superconductivity should occur, with a doublet of topologically protected gapless Andreev bound states, whose energies vary 4π-periodically with the superconducting phase difference across the junction. In this article, we report the observation of an anomalous response to rf irradiation in a Josephson junction made of a HgTe weak link. The response is understood as due to a 4π-periodic contribution to the supercurrent, and its amplitude is compatible with the expected contribution of a gapless Andreev doublet. Our work opens the way to more elaborate experiments to investigate the induced superconductivity in a three-dimensional insulator.
We uncover the fine structure of a silicon vacancy in isotopically purified silicon carbide (4H-\(^{28}\)SiC) and reveal not yet considered terms in the spin Hamiltonian, originated from the trigonal pyramidal symmetry of this spin-3/2 color center. These terms give rise to additional spin transitions, which would be otherwise forbidden, and lead to a level anticrossing in an external magnetic field. We observe a sharp variation of the photoluminescence intensity in the vicinity of this level anticrossing, which can be used for a purely all-optical sensing of the magnetic field. We achieve dc magnetic field sensitivity better than 100 nT/√Hz within a volume of 3×10\(^{−7}\)mm\(^3\) at room temperature and demonstrate that this contactless method is robust at high temperatures up to at least 500 K. As our approach does not require application of radio-frequency fields, it is scalable to much larger volumes. For an optimized light-trapping waveguide of 3 mm\(^3\), the projection noise limit is below 100 fT/√Hz.
Under adequate conditions, cavity polaritons form a macroscopic coherent quantum state, known as polariton condensate. Compared to Wannier-Mott excitons in inorganic semiconductors, the localized Frenkel excitons in organic emitter materials show weaker interaction with each other but stronger coupling to light, which recently enabled the first realization of a polariton condensate at room temperature. However, this required ultrafast optical pumping, which limits the applications of organic polariton condensates. We demonstrate room temperature polariton condensates of cavity polaritons in simple laminated microcavities filled with biologically produced enhanced green fluorescent protein (eGFP). The unique molecular structure of eGFP prevents exciton annihilation even at high excitation densities, thus facilitating polariton condensation under conventional nanosecond pumping. Condensation is clearly evidenced by a distinct threshold, an interaction-induced blueshift of the condensate, long-range coherence, and the presence of a second threshold at higher excitation density that is associated with the onset of photon lasing.
Analysis of Triplet Exciton Loss Pathways in PTB7:PC\(_{71}\)BM Bulk Heterojunction Solar Cells
(2016)
A strategy for increasing the conversion efficiency of organic photovoltaics has been to increase the VOC by tuning the energy levels of donor and acceptor components. However, this opens up a new loss pathway from an interfacial charge transfer state to a triplet exciton (TE) state called electron back transfer (EBT), which is detrimental to device performance. To test this hypothesis, we study triplet formation in the high performing PTB7:PC\(_{71}\)BM blend system and determine the impact of the morphology-optimizing additive 1,8-diiodoctane (DIO). Using photoluminescence and spin-sensitive optically detected magnetic resonance (ODMR) measurements at low temperature, we find that TEs form on PC\(_{71}\)BM via intersystem crossing from singlet excitons and on PTB7 via EBT mechanism. For DIO blends with smaller fullerene domains, an increased density of PTB7 TEs is observed. The EBT process is found to be significant only at very low temperature. At 300 K, no triplets are detected via ODMR, and electrically detected magnetic resonance on optimized solar cells indicates that TEs are only present on the fullerenes. We conclude that in PTB7:PC\(_{71}\)BM devices, TE formation via EBT is impacted by fullerene domain size at low temperature, but at room temperature, EBT does not represent a dominant loss pathway.
Im Rahmen dieser Arbeit wurde ein Rastertunnelmikroskop (STM) für Messungen bei tiefen Temperaturen und hohen Magnetfeldern konzipiert und aufgebaut. Die Probentemperatur kann dabei auf bis zu 1.4\,Kelvin reduziert werden, was spektroskopische Messungen mit extrem hoher Energieauflösung ermöglicht. Die thermische Verbreiterung spektroskopischer Merkmale liegt somit im Bereich eines Milli-Elektronenvolts, wie durch den Fit der Bandlücke eines supraleitenden Materials demonstriert wird. Ein linearer Bewegungsmechanismus ermöglicht die Positionierung des STM-Körpers innerhalb einer supraleitenden Spule, in der Magnetfelder von bis zu 12.5\,Tesla senkrecht zur Probenoberfläche erzeugt werden können. Das System erlaubt des Weiteren den Wechsel von Spitzen und Proben innerhalb des Kryostaten sowie das Aufdampfen von Einzelatomen auf die kalte Probenoberfläche ohne die Probe aus dem STM zu entfernen. Um den Einfluss mechanischer Vibrationen zu minimieren wurde ein innovatives Feder-Dämpfungssystem entwickelt, dass eine Stabilität des Tunnelkontakts von bis zu einem Pikometer gewährleistet. \\
\noindent Der zweite Teil dieser Arbeit präsentiert die Ergebnisse von STM-Messungen auf Antimon-Tellurid (Sb_{2}Te_{3}). Sb_{2}Te_{3}\, gehört zur relativ neu entdeckten Materialklasse der Topologischen Isolatoren (TI). Diese Verbindungen besitzen auf ihren Oberflächen Zustände mit linearer Dispersion, die durch die Zeitumkehr-Invarianz geschützt werden. Fokus unserer Messungen ist dabei der Einfluss eines magnetischen Feldes auf die Eigenschaften eines derartigen unkonventionellen 2D-Elektronengases. Dazu wurde die Entstehung von Landau Level (LL) innerhalb eines Magnetfelds genau untersucht. Die zwei in dieser Arbeit untersuchten Hauptaspekte sind: \medskip
\noindent(i) Die energetische Verbreiterung, die Rückschlüsse auf die Lebensdauer zulässt\\
(ii) Die örtliche Fluktuation. \medskip
\noindent Erstaunlicherweise kann die gemessene Verbreiterung der Landau Resonanzen nicht mit gängigen Mechanismen der Lebenszeit-Verbreiterung erklärt werden. Aus diesem Grund wird eine alternative Interpretation basierend auf der Heissenbergschen Unschärferelation vorgestellt, die im guten Einklang mit den von uns gewonnenen Daten steht. Des Weiteren zeigen örtlich aufgelöste Messungen systematische Abweichungen in der Dirac-Geschwindigkeit positiver und negativer Landau Resonanzen. Diese Fluktuationen stehen dabei in direktem Zusammenhang mit Änderungen im lokalen chemischen Potential. Da die physikalischen Ursachen dieser Abweichung im Rahmen dieser Arbeit nicht zweifelsfrei geklärt werden konnten, werden im letzten Teil die zugrundeliegenden Messergebnisse vorgestellt und mögliche Erklärungen des Verhaltens präsentiert.
Monolayers of transition metal dichalcogenide materials emerged as a new material class to study excitonic effects in solid state, as they benefit from enormous Coulomb correlations between electrons and holes. Especially in WSe\(_{2}\), sharp emission features have been observed at cryogenic temperatures, which act as single photon sources. Tight exciton localization has been assumed to induce an anharmonic excitation spectrum; however, the evidence of the hypothesis, namely the demonstration of a localized biexciton, is elusive. Here we unambiguously demonstrate the existence of a localized biexciton in a monolayer of WSe\(_{2}\), which triggers an emission cascade of single photons. The biexciton is identified by its time-resolved photoluminescence, superlinearity and distinct polarization in micro-photoluminescence experiments. We evidence the cascaded nature of the emission process in a cross-correlation experiment, which yields a strong bunching behaviour. Our work paves the way to a new generation of quantum optics experiments with two-dimensional semiconductors.
Phase coexistence phenomena have been intensively studied in strongly correlated materials where several ordered states simultaneously occur or compete. Material properties critically depend on external parameters and boundary conditions, where tiny changes result in qualitatively different ground states. However, up to date, phase coexistence phenomena have exclusively been reported for complex compounds composed of multiple elements. Here we show that charge- and magnetically ordered states coexist in double-layer Fe/Rh(001). Scanning tunnelling microscopy and spectroscopy measurements reveal periodic charge-order stripes below a temperature of 130 K. Close to liquid helium temperature, they are superimposed by ferromagnetic domains as observed by spin-polarized scanning tunnelling microscopy. Temperature-dependent measurements reveal a pronounced cross-talk between charge and spin order at the ferromagnetic ordering temperature about 70 K, which is successfully modelled within an effective Ginzburg–Landau ansatz including sixth-order terms. Our results show that subtle balance between structural modifications can lead to competing ordering phenomena.
Coherent Polariton Laser
(2016)
The semiconductor polariton laser promises a new source of coherent light, which, compared to conventional semiconductor photon lasers, has input-energy threshold orders of magnitude lower. However, intensity stability, a defining feature of a coherent state, has remained poor. Intensity noise many times the shot noise of a coherent state has persisted, attributed to multiple mechanisms that are difficult to separate in conventional polariton systems. The large intensity noise, in turn, limits the phase coherence. Thus, the capability of the polariton laser as a source of coherence light is limited. Here, we demonstrate a polariton laser with shot-noise-limited intensity stability, as expected from a fully coherent state. This stability is achieved by using an optical cavity with high mode selectivity to enforce single-mode lasing, suppress condensate depletion, and establish gain saturation. Moreover, the absence of spurious intensity fluctuations enables the measurement of a transition from exponential to Gaussian decay of the phase coherence of the polariton laser. It suggests large self-interaction energies in the polariton condensate, exceeding the laser bandwidth. Such strong interactions are unique to matter-wave lasers and important for nonlinear polariton devices. The results will guide future development of polariton lasers and nonlinear polariton devices.
Topological insulators interacting with magnetic impurities have been reported to host several unconventional effects. These phenomena are described within the framework of gapping Dirac quasiparticles due to broken time-reversal symmetry. However, the overwhelming majority of studies demonstrate the presence of a finite density of states near the Dirac point even once topological insulators become magnetic. Here, we map the response of topological states to magnetic impurities at the atomic scale. We demonstrate that magnetic order and gapless states can coexist. We show how this is the result of the delicate balance between two opposite trends, that is, gap opening and emergence of a Dirac node impurity band, both induced by the magnetic dopants. Our results evidence a more intricate and rich scenario with respect to the once generally assumed, showing how different electronic and magnetic states may be generated and controlled in this fascinating class of materials.
Neue Erkenntnisse über elektronische Eigenschaften von Festkörpern legen den Grundstein für innovative Anwendungen der Zukunft. Von zentraler Bedeutung sind insbesondere die Eigenschaften der Elektronenspins. Um diese besser zu verstehen, befasst sich die vorliegende Arbeit mit der experimentellen Analyse der elektronischen Struktur von topologischen Isolatoren (Sb$_2$Te$_3$ , Bi$_2$Se$_x$Te$_{3−x}$, Bi$_{1.5}$Sb$_{0.5}$Te$_{1.8}$Se$_{1.2} und Bi$_{1.4}$Sb$_{1.1}$Te$_{2.2}$S$_{0.3}$) und Kristallen mit starker Spin-Bahn-Wechselwirkung (BiTeI) mittels Photoelektronenspektroskopie. Zu Beginn werden die zum Verständnis dieser Arbeit benötigten Grundlagen erklärt sowie die unterschiedlichen zum Einsatz kommenden Techniken eingeführt. Der Hauptteil der Arbeit teilt sich in drei Forschungsschwerpunkte. Der erste Teil befasst sich mit den elektronischen Eigenschaften der Valenzbandstruktur von Sb2Te3 und den auftretenden Oberflächenzuständen. Durch gezielte Variation der Energie der anregenden Strahlung wird der Charakter der Wellenfunktion des topologischen Oberflächenzustands und dessen Wechselwirkung mit Valenzzuständen erforscht. Dabei spielt die Topologie der Volumenbandstruktur eine grundlegende Rolle. Der zusätzliche Vergleich zu Photoemissionsrechnungen ermöglicht detaillierte Einblicke in die Wechselwirkung zwischen Oberflächen- und Volumenzuständen und gibt Aufschluss darüber, wie diese vermittelt werden.
Im zweiten Abschnitt wird durch die Analyse des gemessenen Photoelektronenspins das Zusammenspiel der Spintextur des Grundzustands und Endzuständen in Bi2Te3 untersucht. Dabei treten, im Gegensatz zu Grundzustandsrechnungen, Radialkomponenten des Polarisationsvektors in nichtsymmetrischer Messgeometrie auf. Sowohl deren Energieabhängigkeit als auch deren Auftreten in Photoemissionsrechnungen (1-Schritt-Modell) deutet darauf hin, dass diese ihren Ursprung in Übergangsmatrixelementen des Photoemissionsprozesses haben. Dieses Ergebnis wird mit Spinpolarisationsmessungen am Oberflächenzustand des nicht-topologischen Schichtsystems BiTeI verglichen.
Im dritten Teil werden Auswirkungen unterschiedlicher Manipulationen der untersuchten Materialien auf deren elektronische Eigenschaften beschrieben. Die Adsorption von Bruchteilen einer monoatomaren Lage des Alkalimetalls Caesium auf die Oberfläche des topologischen Isolators Sb2Te3 wird systematisch untersucht. Dadurch kann dessen intrinsische p-Dotierung teilweise abgebaut werden, wobei die Valenzbandstruktur trotz der Reaktivität des Adsorbats intakt bleibt. Des Weiteren werden Auswirkungen von Änderungen der Kristallstöchiometrie durch Volumendotierung vergleichend diskutiert.
Ausblickend befasst sich das Kapitel mit dem Verhalten geringer Mengen ferromagnetischer
Materialen (Fe, Ni) auf den Oberflächen der topologischen Isolatoren. Für die verschiedenen Adsorbate werden Trends aufgezeigt, die von Temperatur und Zusammensetzung des Substratkristalls abhängen.
Festkörperbasierte Einzelphotonenquellen als Grundbausteine der Quanteninformationstechnologie
(2016)
Die vorliegende Arbeit hatte das Ziel basierend auf Halbleiternanostrukturen eine effiziente und skalierbare Quelle einzelner und ununterscheidbarer Photonen zu entwickeln. Dies ist eine Basiskomponente von zukünftigen quantenphysikalischen Anwendungen wie der Quantenkommunikation oder dem Quantencomputer. Diese Konzepte nutzen gezielt quantenmechanische Systeme um einerseits Kommunikation absolut abhörsicher zu machen oder um neuartige Computer zu konstruieren, die bestimmte Aufgaben - wie die Produktzerlegung großer Zahlen - effizienter lösen als heutige Systeme. Ein mögliche Realisierung der Quantenkommunikation ist beispielsweise die Schlüsselverteilung zwischen zwei Parteien durch Verwendung des BB84-Protokolls. Dazu wird eine Lichtquelle benötigt, welche die physikalisch kleinstmögliche Lichtmenge - ein einzelnes Photon - aussendet. Der Kommunikationskanal wird dann über verschiedene Polarisationszustände dieser Photonen gegen ein Abhören nach außen hin abgesichert. Da die maximale Kommunikationsdistanz aufgrund von Verlusten im Quantenkanal beschränkt ist, muss das Signal für größere Distanzen mit Hilfe eines sog. Quantenrepeaters aufbereitet werden. Ein solcher kann ebenfalls unter Verwendung von Einzelphotonenquellen realisiert werden. Das Konzept des Quantenverstärkers stellt aber die zusätzliche Anforderung an die Einzelphotonenquelle, dass die ausgesendeten Lichtteilchen in der Summe ihrer Eigenschaften wie Energie und Polarisation immer gleich und somit ununterscheidbar sein müssen.
Auf Basis solcher ununterscheidbarer Photonen gibt es zudem mit dem linear optischen Quantenrechner auch mögliche theoretische Ansätze zur Realisierung eines Quantencomputers. Dabei kann über die Quanteninterferenz von ununterscheidbaren Photonen an optischen Bauteilen wie Strahlteilern ein Quanten-NOT-Gatter zur Berechnung spezieller Algorithmen realisiert werden.
Als vielversprechende Kandidaten für eine solche Lichtquelle einzelner Photonen haben sich in den letzten Jahren Halbleiter-Quantenpunkte herauskristallisiert. Dank des festkörperbasierten Ansatzes können diese Strukturen in komplexe photonische Umgebungen zur Erhöhung der Photonen-Extraktionseffizienz und -Emissionsrate eingebettet werden. Ziel dieser Arbeit war somit eine effiziente Quelle einzelner ununterscheidbarer Photonen zu realisieren. Im Hinblick auf die spätere Anwendbarkeit wurde der Fokus zudem auf die skalierbare bzw. deterministische Fabrikation der Quantenpunkt-Strukturen gelegt und zwei technologische Ansätze - die kryogene in-situ-Lithographie und das positionierte Wachstum von Quantenpunkten - untersucht.
Im ersten experimentellen Kapitel dieser Arbeit wird ein neuartiges Materialsystem vorgestellt, welches sich zur Generation einzelner Photonen eignet. Es können spektral scharfe Emissionslinien mit Linienbreiten bis knapp über 50 µeV aus Al$_{0,48}$In$_{0,52}$As Volumenmaterial beobachtet werden, wenn diese Schicht auf InP(111) Substraten abgeschieden wird. In Querschnitt-Rastertunnelmikroskopie-Messungen wurden ca. 16 nm große Cluster, welche eine um ungefähr 7 % höhere Indiumkonzentration im Vergleich zur nominellen Zusammensetzung des Volumenmaterials besitzen, gefunden. Über die Simulation dieser Strukturen konnten diese als Quelle der spektral scharfen Emissionslinien identifiziert werden. Zudem wurde mittels Auto- und Kreuzkorrelationsmessungen nachgewiesen, dass diese Nanocluster einzelne Photonen emittieren und verschieden geladene exzitonische und biexzitonische Ladungsträgerkomplexe binden können.
Anschließend wurde der Fokus auf InGaAs-Quantenpunkte gelegt und zunächst im Rahmen einer experimentellen und theoretischen Gemeinschaftsarbeit die Kohärenzeigenschaften eines gekoppelten Quantenpunkt-Mikrokavität-Systems untersucht. Über temperaturabhängige Zwei-Photonen Interferenz Messungen und dem Vergleich mit einem mikroskopischen Modell des Systems konnten gezielt die Bestandteile der Quantenpunkt-Dephasierung extrahiert werden. Auf diesen Ergebnissen aufbauend wurde die gepulste, strikt resonante Anregung von Quantenpunkten als experimentelle Schlüsseltechnik etabliert. Damit konnten bei tiefen Temperaturen nahezu vollständig ununterscheidbare Photonen durch eine Zwei-Photonen Interferenz Visibilität von über 98 % nachgewiesen werden.
Für ein skalierbares und deterministisches Quantenpunkt-Bauelement ist entweder die Kontrolle über die Position an welcher der Quantenpunkt gewachsen wird nötig, oder die Position an der eine Mikrokavität geätzt wird muss auf die Position eines selbstorganisiert gewachsenen Quantenpunktes abgestimmt werden. Im weiteren Verlauf werden Untersuchungen an beiden technologischen Ansätzen durchgeführt.
Zunächst wurde der Fokus auf positionierte Quantenpunkte gelegt. Mittels in das Substrat geätzter Nanolöcher wird der Ort der Quantenpunkt-Nukleation festgelegt. Durch die geätzten Grenzflächen in Quantenpunkt-Nähe entstehen jedoch auch Defektzustände, die negativen Einfluss auf die Kohärenz der Quantenpunkt-Emission nehmen. Deshalb wurde an diesem Typus von Quantenpunkten die strikt resonante Anregung etabliert und zum ersten Mal die kohärente Kopplung des Exzitons an ein resonantes Lichtfeld demonstriert. Zudem konnte die deterministische Kontrolle der Exzitonbesetzung über den Nachweis einer Rabi-Oszillation gezeigt werden.
Abschließend wird das Konzept der kryogenen in-situ-Lithographie vorgestellt. Diese erlaubt die laterale Ausrichtung der Mikrokavität an die Position eines selbstorganisiert gewachsenen Quantenpunktes. Damit konnte gezielt die Emission eines zuvor ausgewählten, spektral schmalen Quantenpunktes mit nahezu 75 % Gesamteffizienz eingesammelt werden. Die Ununterscheidbarkeit der Quantenpunkt-Photonen war dabei mit einer Zwei-Photonen Interferenz Visibilität von bis zu $\nu=(88\pm3)~\%$ sehr hoch. Damit wurde im Rahmen dieser Arbeit eine Einzelphotonenquelle realisiert, aus der sich sehr effizient kohärente Photonen auskoppeln lassen, was einen wichtigen Schritt hin zur deterministischen Fabrikation von Lichtquellen für quantenphysikalischen Anwendungen darstellt.
One of the most intricate issues of nuclear power is the long-term safety of repositories for radioactive waste. These repositories can have an impact on future generations for a period of time orders of magnitude longer than any known civilization. Several countries have considered copper as an outer corrosion barrier for canisters containing spent nuclear fuel. Among the many processes that must be considered in the safety assessments, radiation induced processes constitute a key-component. Here we show that copper metal immersed in water uptakes considerable amounts of hydrogen when exposed to γ-radiation. Additionally we show that the amount of hydrogen absorbed by copper depends on the total dose of radiation. At a dose of 69 kGy the uptake of hydrogen by metallic copper is 7 orders of magnitude higher than when the absorption is driven by H\(_{2}\)(g) at a pressure of 1 atm in a non-irradiated dry system. Moreover, irradiation of copper in water causes corrosion of the metal and the formation of a variety of surface cavities, nanoparticle deposits, and islands of needle-shaped crystals. Hence, radiation enhanced uptake of hydrogen by spent nuclear fuel encapsulating materials should be taken into account in the safety assessments of nuclear waste repositories.
In biological tissue, an accumulation of similarly shaped objects with a susceptibility difference to the surrounding tissue generates a local distortion of the external magnetic field in magnetic resonance imaging. It induces stochastic field fluctuations that characteristically influence proton spin dephasing in the vicinity of these magnetic perturbers. The magnetic field correlation that is associated with such local magnetic field inhomogeneities can be expressed in the form of a dynamic frequency autocorrelation function that is related to the time evolution of the measured magnetization. Here, an eigenfunction expansion for two simple magnetic perturber shapes, that of spheres and cylinders, is considered for restricted spin diffusion in a simple model geometry. Then, the concept of generalized moment analysis, an approximation technique that is applied in the study of (non-)reactive processes that involve Brownian motion, allows deriving analytical expressions of the correlation function for different exponential decay forms. Results for the biexponential decay for both spherical and cylindrical magnetized objects are derived and compared with the frequently used (less accurate) monoexponential decay forms. They are in asymptotic agreement with the numerically exact value of the correlation function for long and short times.
Giant photon bunching, superradiant pulse emission and excitation trapping in quantum-dot nanolasers
(2016)
Light is often characterized only by its classical properties, like intensity or coherence. When looking at its quantum properties, described by photon correlations, new information about the state of the matter generating the radiation can be revealed. In particular the difference between independent and entangled emitters, which is at the heart of quantum mechanics, can be made visible in the photon statistics of the emitted light. The well-studied phenomenon of superradiance occurs when quantum–mechanical correlations between the emitters are present. Notwithstanding, superradiance was previously demonstrated only in terms of classical light properties. Here, we provide the missing link between quantum correlations of the active material and photon correlations in the emitted radiation. We use the superradiance of quantum dots in a cavity-quantum electrodynamics laser to show a direct connection between superradiant pulse emission and distinctive changes in the photon correlation function. This directly demonstrates the importance of quantum–mechanical correlations and their transfer between carriers and photons in novel optoelectronic devices.
Graphene-based single-electron and hybrid devices, their lithography, and their transport properties
(2016)
This work explores three different aspects of graphene, a single-layer of carbon atoms arranged in a hexagonal lattice, with regards to its usage in future electronic devices; for instance in the context of quantum information processing. For a long time graphene was believed to be thermodynamically unstable. The discovery of this strictly two-dimensional material completed the family of carbon based structures, which had already been subject of intensive research with focus on zero-dimensional fullerenes and one-dimensional carbon nanotubes. Within only a few years of its discovery, the field of graphene related research has grown into one of today’s most diverse and prolific areas in condensed matter physics, highlighted by the award of the 2010 Nobel Prize in Physics to A.K. Geim and K. Noveselov for “their groundbreaking experiments regarding the two-dimensional material graphene”.
From the point of view of an experimental physicist interested in the electronic properties of a material system, the most intriguing characteristic of graphene is found in the Dirac-like nature of its charge carriers, a peculiar fact that distinguishes graphene from all other known standard semiconductors. The dynamics of charge carriers close to zero energy are described by a linear energy dispersion relation, as opposed to a parabolic one, which can be understood as a result of the underlying lattice symmetry causing them to behave like massless relativistic particles. This fundamentally different behavior can be expected to lead to the observation of completely new phenomena or the occurrence of deviations in well-known effects.
Following a brief introduction of the material system in chapter 2, we present our work studying the effect of induced superconductivity in mesoscopic graphene Josephson junctions by proximity to superconducting contacts in chapter 3. We explore the use of Nb as the superconducting material driven by the lack of high critical temperature and high critical magnetic field superconductor technology in graphene devices at that time. Characterization of sputter-deposited Nb films yield a critical transition temperature of \(T_{C}\sim 8{\rm \,mK}\). A prerequisite for successful device operation is a high interface quality between graphene and the superconductor. In this context we identify the use of an Ti as interfacial layer and incorporate its use by default in our lithography process. Overall we are able to increase the interface transparency to values as high as \(85\%\). With the prospect of interesting effects in the ballistic regime we try to enhance the electronic quality of our Josephson junction devices by substrate engineering, yet with limited success. We achieve moderate charge carrier mobilities of up to \(7000{\rm \,cm^2/Vs}\) on a graphene/Boron-nitride heterostructure (fabrication details are covered in chapter 5) putting the junction in the diffusive regime (\(L_{device}<L_{\rm{mfp}}\)). We speculate that either inhomogeneities in the graphene channel or lithography residues are responsible for this observation.
Furthermore we study the Josephson effect and Andreev reflection related physics in this device by low-temperature transport measurements. The junction carries a bipolar supercurrent which remains finite at the charge neutrality point. The genuine Josephson character is confirmed by the modulation of the supercurrent as a function of an out-of-plane magnetic field resembling that of a Fraunhofer-like pattern. This is further supported by the response of the junction to microwave radiation in the form of Shaprio steps. Surprisingly we find a strongly reduced superconducting energy gap of approximately \(\Delta = 400{\rm \,\mu eV}\) by quantitatively analyzing data of multiple Andreev reflections. We show this result to be consistent by careful analysis of the device parameters and comparison of these to a theoretical model. More experiments will be needed to determine the origin of this reduction and if the presence of the Ti interfacial layer plays an important role in that.
With regards to possible usability of superconducting contacts in more complex hybrid structures we can conclude that our work establishes the necessary preconditions while still leaving room for improvements; especially in terms of device quality.
In the second part of this work we are primarily interested in electrical transport properties of graphene nanodevices and their application in graphene-superconductor hybrid structures. The fact that graphene is mechanically stable down to a few tens of nanometers in width while exhibiting a finite conductance makes it an appealing choice as host for single-electron devices, also known as quantum dots. Our work on this topic is covered in chapter 4 where we first develop a high-resolution lithography process for the fabrication of single electron devices with critical feature sizes of roughly \(50{\rm \,nm}\). To this end we use a resist etch mask in combination with a reactive-ion etch process for device patterning. Carrier confinement in graphene is known to be hindered by the Klein tunneling phenomenon, a challenge that can be overcome by using all-graphene nano-constrictions to decouple the source and drain contacts from the central island.
The traditionally used constriction design is comprised of long and narrow connections. We argue that a design with very short and narrow constrictions could be beneficial for the quantum dot performance as the length merely affects the overall conductance and requires extended side-gates to control their transmission. We confirm the functionality of two different devices in low-temperature measurements, which differ in the size of their central island with \(d=250{\rm \,nm}\) for device no. 1 and \(d=400{\rm \,nm}\) for device no. 2. Coulomb blockade measurements conducted at \(20{\rm \,mK}\) on both devices reveal clear sequences of Coulomb peaks with amplitudes of up to \(0.8\rm{\,e}^2/\rm{h}\), a value significantly larger than what is commonly reported for similar devices. We interpret this as an indication of rather homogeneous constrictions, resulting from the modified design. Coulomb diamond measurements display the behavior expected for a lithographically designed single quantum dot revealing no features related to the presence of an additional dot. Using the stability diagram we determine the addition energies of the two dots and find them to be in good agreement with values reported in the literature for devices of similar size. Using the normalized Coulomb peak spacing as a figure of merit for the device quality we find that device no. 1 quantitatively compares well with a similar device fabricated on a superior hexagonal boron-nitride substrate. This result underlines the importance of non-substrate related extrinsic disorder sources and emphasizes the cleanliness of our lithography process.
Superconductor-graphene quantum dot hybrid structures employing Nb and Al electrodes were successfully fabricated from a lithography point of view, yet no evidence of any superconducting related effect was found in transport measurements. We assign the missing observation to interface issues that require careful analysis and likely a revision of the fabrication process.
A property equally important in graphene Josephson Junctions and quantum dots is the electronic quality of the device, as has been addressed in the previous paragraphs. It turns out that the \(\rm{SiO}_{2}\;\) substrate and lithography residues constitute the two major sources of disorder in graphene. In chapter 5 we present an approach based on the original work of Dean et al. who utilize hexagonal-Boron nitride as a replacement substrate for \(\rm{SiO}_{2}\). This idea was then extended by Wang et al. who also used this material as a shield to protect the graphene surface from contaminations during the lithography process. These structures are commonly referred to as van der Waals heterostructures and are assembled by stacking individual crystals on top of each other.
For this purpose we build a mechanical transfer system based on an optical microscope equipped with an additional micro-manipulator stage allowing precise alignment of two micrometer sized crystals with high precision. We demonstrate the functionality of this setup on the basis of successfully fabricated heterostructures. Furthermore a variation on the traditional method for single graphene/boron nitride structures is presented. Based on a reversed stacking order this method yields large areas of homogeneous graphene, however it comes with the drawback of limited yields. A common type of problem accompanying the fabrication of encapsulated graphene structures is the formation of contamination spots (also referred to as bubbles in the literature) at the interfaces between BN and graphene. We experience similar issues which we are unable to prevent and thus pose a limit to the maximum available device size. In the next step we develop a full lithography paradigm including high-resolution device patterning by electron beam lithography combined with reactive ion etching and two different ways to establish electrical contact to the encapsulated graphene flake. In this context we explore the use of three different types of etch masks and find a double layer of PMMA/HSQ best suited for our purposes. Our low power plasma etch process utilizes a combination of \(\rm{O}_{2}\;\) and \(\rm{CHF}_{3}\;\) and is optimized to show reproducible etch results.
A widely used method for electrical contacts relies on one-dimensional edge contacts whose functionality crucially depends on the use of Cr as the interface layer. For compatibility reasons with superconducting materials, e.g. Nb, we develop a self-aligned contact process that instead of only Cr is also compatible with Ti. We achieve this by modifying the plasma etch parameters such that the etch process exhibits extremely low graphene etch rates while keeping a high etch rate for h-BN. This allows clearing of a narrow stripe of graphene at the edge of the structure by using a thick PMMA layer as etch mask as replacement of the PMMA/HSQ combination. The purpose of this PMMA mask is two-fold since it also serves as lift-off mask during metalization.
The quality of the edge contacts fabricated with either method is excellent as determined from transport measurements at room and cryogenic temperatures. With typical contact resistances of a few hundred \({\rm \,}\Omega\mu{\rm m}\) and a record low of \(100{\rm \,}\Omega\mu{\rm m}\) the contacts can be considered to be state-of-the-art. The positive effect of encapsulation on the electronic quality is confirmed on a device exhibiting charge carrier mobilities exceeding \(10^5{\rm \,cm^2/Vs}\), one magnitude larger than what is commonly achieved on \(\rm{SiO}_{2}\).
The investigation of induced superconductivity in graphene Josephson Junctions, quantum dots, and high mobility heterostructures underlines the versatility of this material system, while covering only a tiny fraction of its prospects. Combination of the acquired knowledge regarding the physical effects and the developed lithography processes lay the foundation towards the fabrication and study of novel graphene hybrid devices.
A novel growth method has been developed, allowing for the growth of strained HgTe shells on CdTe nanowires (NWs). The growth of CdTe-HgTe core-shell NWs required high attention in controlling basic parameters like substrate temperature and the intensity of supplied material fluxes. The difficulties in finding optimized growth conditions have been successfully overcome in this work.
We found the lateral redistribution of liquid growth seeds with a ZnTe growth start to be crucial to trigger vertical CdTe NW growth. Single crystalline zinc blende CdTe NWs grew, oriented along [111]B. The substrate temperature was the most critical parameter to achieve straight and long wires. In order to adjust it, the growth was monitored by reflection high-energy electron diffraction, which was used for fine tuning of the temperature over time in each growth run individually. For optimized growth conditions, a periodic diffraction pattern allowed for the detailed analysis of atomic arrangement on the surfaces and in the bulk. The ability to do so reflected the high crystal quality and ensemble uniformity of our CdTe NWs. The NW sides were formed by twelve stable, low-index crystalline facets. We observed two types stepped and polar sides, separated by in total six flat and non-polar facets.
The high crystalline quality of the cores allowed to grow epitaxial HgTe shells around. We reported on two different heterostructure geometries. In the first one, the CdTe NWs exhibit a closed HgTe shell, while for the second one, the CdTe NWs are overgrown mainly on one side. Scanning electron microscopy and scanning transmission electron microscopy confirmed, that many of the core-shell NWs are single crystalline zinc blende and have a high uniformity. The symmetry of the zinc blende unit cell was reduced by residual lattice strain. We used high-resolution X-ray diffraction to reveal the strain level caused by the small lattice mismatch in the heterostructures. Shear strain has been induced by the stepped hetero-interface, thereby stretching the lattice of the HgTe shell by 0.06 % along a direction oriented with an angle of 35 ° to the interface.
The different heterostructures obtained, were the base for further investigation of quasi-one-dimensional crystallites of HgTe. We therefore developed methods to reliably manipulate, align, localize and contact individual NWs, in order to characterize the charge transport in our samples. Bare CdTe cores were insulating, while the HgTe shells were conducting. At low temperature we found the mean free path of charge carriers to be smaller, but the phase coherence length to be larger than the sample size of several hundred nanometers. We observed universal conductance fluctuations and therefore drew the conclusion, that the trajectories of charge carriers are defined by elastic backscattering at randomly distributed scattering sites. When contacted with superconducting leads, we saw induced superconductivity, multiple Andreev reflections and the associated excess current. Thus, we achieved HgTe/superconductor interfaces with high interfacial transparency.
In addition, we reported on the appearance of peaks in differential resistance at Delta/e for HgTe-NW/superconductor and 2*Delta/e for superconductor/HgTe-NW/superconductor junctions, which is possibly related to unconventional pairing at the HgTe/superconductor interface. We noticed that the great advantage of our self-organized growth is the possibility to employ the metallic droplet, formerly seeding the NW growth, as a superconducting contact. The insulating wire cores with a metallic droplet at the tip have been overgrown with HgTe in a fully in-situ process. A very high interface quality was achieved in this case.
In a standard semiconductor laser, electrons and holes recombine via stimulated emission to emit coherent light, in a process that is far from thermal equilibrium. Exciton-polariton condensates–sharing the same basic device structure as a semiconductor laser, consisting of quantum wells coupled to a microcavity–have been investigated primarily at densities far below the Mott density for signatures of Bose-Einstein condensation. At high densities approaching the Mott density, exciton-polariton condensates are generally thought to revert to a standard semiconductor laser, with the loss of strong coupling. Here, we report the observation of a photoluminescence sideband at high densities that cannot be accounted for by conventional semiconductor lasing. This also differs from an upper-polariton peak by the observation of the excitation power dependence in the peak-energy separation. Our interpretation as a persistent coherent electron-hole-photon coupling captures several features of this sideband, although a complete understanding of the experimental data is lacking. A full understanding of the observations should lead to a development in non-equilibrium many-body physics.
High-Resolution X-ray Imaging based on a Liquid-Metal-Jet-Source with and without X-ray Optics
(2016)
With increasing miniaturization in industry and medical technology, non-destructive testing techniques are an area of everincreasing importance. In this framework, X-ray microscopy offers an efficient tool for the analysis, understanding and quality assurance of microscopic species, in particular as it allows reconstructing three-dimensional data sets of the whole sample’s volumevia computed tomography (CT).
The following thesis describes the conceptualization, design, construction and characterization of a compact laboratory-based X-ray microscope in the hard X-ray regime around 9 keV, corresponding to a wavelength of 0.134 nm. Hereby, the main focus is on the optimization of resolution and contrast at relatively short exposure times. For this, a novel liquid-metal-jet anode source is the basis. Such only recently commercially available X-ray source reaches a higher brightness than other conventional laboratory sources, i.e. the number of emitted photons (X-ray quanta) per area and solid angle is exceptionally high. This is important in order to reach low exposure times. The reason for such high brightness is the usage of the rapidly renewing anode out of liquid metal which enables an effective dissipation of heat, normally limiting the creation of high intensities on a small area.
In order to cover a broad range of different samples, the microscope can be operated in two
modes. In the “micro-CT mode”, small pixels are realized with a crystal-scintillator and an
optical microscope via shadow projection geometry. Therefore, the resolution is limited by the emitted wavelength of the scintillator, as well as the blurring of the screen. However, samples in the millimeter range can be scanned routinely with low exposure times. Additionally, this mode is optimized with respect to in-line phase contrast, where edges of an object are enhanced and thus better visible.
In the second “nano-CT mode”, a higher resolution can be reached via X-ray lenses. However,
their production process is due to the physical properties of the hard X-ray range - namely high absorption and low diffraction - extremely difficult, leading typically to low performances. In combination with a low brightness, this leads to long exposure times and high requirements in terms of stability, which is one of the key problems of laboratory-based X-ray microscopy. With the here-developed setup and the high brightness of its source, structures down to 150 nm are resolved at moderate exposure times (several minutes per image) and nano-CTs can be obtained.
The charge carrier lifetime is an important parameter in solar cells as it defines, together with the mobility, the diffusion length of the charge carriers, thus directly determining the optimal active layer thickness of a device. Herein, we report on charge carrier lifetime values in bromine doped planar methylammonium lead iodide (MAPbI\(_3\)) solar cells determined by transient photovoltage. The corresponding charge carrier density has been derived from charge carrier extraction. We found increased lifetime values in solar cells incorporating bromine compared to pure MAPbI\(_3\) by a factor of ~2.75 at an illumination intensity corresponding to 1 sun. In the bromine containing solar cells we additionally observe an anomalously high value of extracted charge, which we deduce to originate from mobile ions.