@phdthesis{Sauer2014, author = {Sauer, Christoph}, title = {Accessing molecule-metal and hetero-molecular interfaces with direct and resonant photoelectron spectroscopy}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-107928}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {This thesis consists of two parts of original experimental work, its evaluation, and in- terpretation. Its final goal is to investigate dynamical charge transfer (CT) at a hetero- molecular interface with resonant photoelectron spectroscopy (RPES). In order to achieve this goal preliminary studies have been necessary. First two hetero-molecular inter- faces that exhibit adequate structural properties as well as an appropriate photoelec- tron spectroscopy (PES) spectrum of the valence regime have been identified. The de- sired CT analysis with RPES of these hetero-molecular systems is then conducted on the basis of the knowledge gained by previous RPES studies of homo-molecular sys- tems. The characterization of hetero-molecular films on single crystal Ag surfaces in the first part of this thesis is performed with high resolution core level PES and valence PES. The reproduction of the core level PES data with reference spectra of homo-molecular films allows me to determine which molecule is in direct contact to the Ag surface and which one is situated in higher layers (not the first one). Due to the direct correspon- dence of core level and valence PES the assignment of features in the spectra of the latter technique can be achieved with the identification of the contributions extracted from the evaluation of the data of the former technique. It is found that the systems PTCDA on one monolayer (ML) of SnPc on Ag(111) and CuPc/1 ML PTCDA/Ag(111) are stable at 300 K which means that no significant layer exchange occurs for these systems. In contrast a vertical exchange of CuPc and PTCDA molecules is observed for PTCDA de- posited on top of 1 ML CuPc/Ag(111). Up to a coverage of approximately 0.5 ML of PTCDA molecules these diffuse into the first layer, replace CuPc molecules, and con- sequently force them into higher layers. Above a coverage of approximately 0.5 ML of PTCDA molecules these are also found in higher layers. The search for a promising system for the intended RPES study then leads to an investigation of hetero-molecular films with a combination of F4TCNQ and PTCDA molecules on Ag(110) within the same approach. Depositing F4TCNQ molecules onto a 1 ML PTCDA/Ag(110) film in the herringbone phase at 300 K results in an instable hetero-organic system which un- dergoes a layer exchange. Hereby PTCDA molecules in the first layer are replaced by F4TCNQ molecules similar to the behavior of the system PTCDA/1 ML CuPc/Ag(111). Switching the order of the preparation steps leads to a stable film of PTCDA/1.0 ML F4TCNQ/Ag(110) at 300 K. Among the stable hetero-molecular films only the system CuPc/1 ML PTCDA/Ag(111) exhibits the required wetting growth of the first two layers at 300 K and a valence PES spectrum with energetically separable molecular orbital signals in the same intensity range. Thus this system is identified to be appropriate for a detailed analysis with RPES. The unexpected findings of vertical exchanges in the hetero-molecular films at 300 K motivate a study of the behavior at elevated temperatures for all systems investigated before. Therein it is revealed that annealing 1.5 ML SnPc/1 ML PTCDA/Ag(111) and 1.0 ML PTCDA/1 ML SnPc/Ag(111) to a temperature above the desorption temperature of molecules not in direct contact to the Ag(111) surface results in a 1 ML SnPc/Ag(111) film in both cases. Hence at elevated temperatures (approximately above 420 K) SnPc molecules replace PTCDA molecules in the first layer on Ag(111). At higher temper- atures (approximately above 470 K) PTCDA molecules and SnPc molecules situated above the first layer then desorb from the 1 ML SnPc/Ag(111) sample. Annealing all hetero-molecular films with CuPc and PTCDA molecules on Ag(111) to 570 K leads to a sample with CuPc and PTCDA molecules in the first and only layer. Depending on the initial CuPc coverage different ratios of both molecules are obtained. With a CuPc coverage of exactly 1 ML, or above, films with PTCDA coverages of approxi- mately 0.1-0.2 ML are produced. So at elevated temperatures CuPc molecules replace PTCDA molecules in the first layer of the system CuPc/1 ML PTCDA/Ag(111). Anal- ogously the layer exchange at 300 K for the system PTCDA/1 ML CuPc/Ag(111) is reversed at elevated temperatures. In the case of SnPc and CuPc coverages below 1 ML annealing vertical hetero-molecular systems with PTCDA on Ag(111) up to 570 K re- sults in a single layer of mixed hetero-molecular films with lateral long range order. In this way the system CuPc + PTCDA/Ag(111) is prepared and then characterized as a proper system for a detailed analysis with RPES. Additional annealing experiments of hetero-organic films consisting of F4TCNQ and PTCDA molecules on Ag(110) with an F4TCNQ coverage of 1.0 ML (and above) end in a submonolayer (sub-ML) film of F4TCNQ/Ag(110) that exhibits a contribution of amorphous carbon. Consequently, it can be concluded that at elevated temperatures part of the F4TCNQ molecules decom- pose. In the second part of this thesis homo-molecular multilayer samples and (sub-)ML films on single crystalline metal surfaces are investigated with RPES in order to enable the final RPES study of vertical and lateral hetero-molecular interface systems. First a pho- ton energy (hν) dependent intensity variation of (groups of) molecular orbital signals of exemplary multilayer films (NTCDA and coronene) is studied and explained on the basis of the local character of the electronic transitions in near edge x-ray absorption fine structure (NEXAFS) spectroscopy in combination with the real space probability den- sity of the contributing molecular orbitals. This simple approach is found to be able to correctly describe relative intensity variations by orders of magnitude while it fails for hν dependent relative intensity changes in the same order of magnitude. After that the hν dependent line-shape evolution of an energetically separated molecular orbital signal of a CuPc multilayer is discussed in relation to small molecules in the gas phase and explained with an effect of electron vibration coupling. Through a comparison of the hν dependent line-shape evolution of the highest occupied molecular orbital (HOMO) of a CuPc with a SnPc multilayer the molecule specific character of this effect is identified. Then the same effect with either two (or more) electronic transitions or multiple coupling vibrational modes is observed for a coronene multilayer. Thereafter the influence of the adsorption on metal surfaces on this effect is studied and discussed with special emphasis on a possible contribution by features which are related to dynamical interface CT. For a sub-ML of SnPc/Au(111) no variation with respect to a SnPc multilayer film is detected while for a sub-ML of CuPc/Au(111) less intensity is distributed into the high binding energy (EB) part of the HOMO signal with respect to the corresponding multilayer film. In the RPES data of a sub-ML of coronene/Ag(111) a resonance specific variation of the hν dependent line-shape evolution of the HOMO signal is found by the revelation of a change of this effect with respect to the coronene multilayer data in only one of the two NEXAFS resonances. All these findings are consistently explained within one effect and a common set of parameters, namely all quantities that characterize the potential energy surfaces involved in the RPES process. Through that an alternative explanation that re- lies on dynamical CT can be excluded which influences the following CT analysis with RPES. Three criteria for such an analysis of dynamical interface CT with RPES are identified. In the system coronene on Ag(111) a low EB feature is related to metal-molecule inter- face CT through the assignment of a particular final state and hence named CT state. In the EB region of the frontier molecular orbital signals of the molecule-metal inter- face systems with a signal from the lowest unoccupied molecular orbital (LUMO) in direct valence PES a broad line-shape is measured in RPES. This finding is related to interface CT by a possible explanation that emerges through the comparison to the line- shape of the CT state. The constant kinetic energy (EK ) features detected for several molecule-metal interfaces constitute the third criterion for a CT analysis with RPES. For the molecule-metal interface systems without a LUMO signal in direct valence PES the energy of these features can be calculated with the assignment of the responsible decay channel in combination with explicitly given simplifying assumptions. Through that the involvement of metal-molecule interface CT in the generation of these constant EK fea- tures is demonstrated. The RPES data of the lateral and the vertical hetero-molecular interface, identified in the first part, is then scanned for these three CT criteria. Thereby neither for the lateral hetero-molecular system CuPc + PTCDA/Ag(111) nor for the verti- cal hetero-molecular system CuPc/1 ML PTCDA/Ag(111) dynamical hetero-molecular interface CT can be confirmed. In the former system the molecule-metal interface in- teraction is found to dominate the physics of the system in RPES while in the latter system no hints for a significant hybridization at the CuPc-PTCDA interface can be revealed}, subject = {Organisches Molek{\"u}l}, language = {en} } @phdthesis{Metzger2021, author = {Metzger, Christian Thomas Peter}, title = {Development of photoemission spectroscopy techniques for the determination of the electronic and geometric structure of organic adsorbates}, doi = {10.25972/OPUS-22952}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-229525}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {The projects presented in this thesis cover the examination of the electronic and structural properties of organic thin films at noble metal-organic interfaces. Angle-resolved photoemission spectroscopy is used as the primary investigative tool due to the connection of the emitted photoelectrons to the electronic structure of the sample. The surveyed materials are of relevance for fundamental research and practical applications on their own, but also serve as archetypes for the photoemission techniques presented throughout the four main chapters of this thesis. The techniques are therefore outlined with their adaptation to other systems in mind and a special focus on the proper description of the final state. The most basic description of the final state that is still adequate for the evaluation of photoemission data is a plane wave. Its simplicity enables a relatively intuitive interpretation of photoemission data, since the initial and final state are related to one another by a Fourier transform and a geometric factor in this approximation. Moreover, the initial states of some systems can be reconstructed in three dimensions by combining photoemission measurements at various excitation energies. This reconstruction can even be carried out solely based on experimental data by using suitable iterative algorithms. Since the approximation of the final state in the photoemission process by a plane wave is not valid in all instances, knowledge on the limitations of its applicability is indispensable. This can be gained by a comparison to experimental data as well as calculations with a more detailed description of the photoemission final state. One possible appraoch is based on independently emitting atoms where the coherent superposition of partial, atomic final states produces the total final state. This approach can also be used for more intricate studies on organic thin films. To this end, experimental data can be related to theoretical calculations to gain extensive insights into the structural and electronic properties of molecules in organic thin films.}, subject = {ARPES}, language = {en} } @phdthesis{Graus2018, author = {Graus, Martin}, title = {Anwendung und Weiterentwicklung der Orbitaltomographie}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-163194}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2018}, abstract = {Als Orbitaltomographie wird eine junge Methode innerhalb der Photoelektronenspektrokopie bezeichnet, welche es erm{\"o}glicht, Molek{\"u}lorbitale mit hoher Ortsaufl{\"o}sung abzubilden. Hierf{\"u}r werden die zu untersuchenden Molek{\"u}le durch elektromagnetische Strahlung angeregt und die mittels Photoeffekt emittierten Elektronen hinsichtlich ihres Impulses und ihrer kinetischen Energie charakterisiert. Moderne Photoemissionsexperimente erlauben die simultane Vermessung des gesamten Impulshalbraumes oberhalb der Probe. Die detektierte Intensit{\"a}tsverteilung stellt dann unter bestimmten Bedingungen das Betragsquadrat eines hemisph{\"a}rischen Schnittes durch den Fourierraum des spektroskopierten Orbitals dar, wobei der Radius der Hemisph{\"a}re von der Energie der anregenden Strahlung abh{\"a}ngt. Bei den in dieser Arbeit untersuchten Systemen handelt es sich um adsorbierte Molek{\"u}le, die hochgeordnete Schichten auf kristallinen Edelmetalloberfl{\"a}chen bilden. Im Fall eindom{\"a}nigen Wachstums liefern die parallel orientierten Molek{\"u}le identische Photoemissionssignale. Kommt es hingegen zur Ausbildung von Rotations- und Spiegeldom{\"a}nen, stellt die gemessene Impulsverteilung eine Superposition der unterschiedlichen Einzelbeitr{\"a}ge dar. Somit lassen sich R{\"u}ckschl{\"u}sse auf die Orientierungen der Molek{\"u}le auf den Substraten ziehen. Diese Charakterisierung molekularer Adsorptionsgeometrien wird anhand verschiedener Modellsysteme vorgestellt. Variiert man die Energie der anregenden Strahlung und somit den Radius der hemisph{\"a}rischen Schnitte durch den Impulsraum, ist es m{\"o}glich den Fourierraum des untersuchten Molek{\"u}lorbitals dreidimensional abzubilden. Kombiniert man die gemessenen Intensit{\"a}ten mit Informationen {\"u}ber die Phase der Wellenfunktion im Impulsraum, die durch zus{\"a}tzliche Experimente oder rechnerisch gewonnen werden k{\"o}nnen, l{\"a}sst sich durch eine Fouriertransformation ein dreidimensionales Bild des Orbitals generieren, wie Schritt f{\"u}r Schritt gezeigt wird. Im Zuge eines Photoemissionsprozesses kann das Molek{\"u}l in einen angeregten vibronischen Zustand {\"u}bergehen. Mittels Photoemissionsexperimenten mit hoher Energieaufl{\"o}sung lassen sich Unterschiede zwischen den Impulsverteilungen der schwingenden Molek{\"u}le und denen im vibronischen Grundzustand feststellen. Ein Vergleich der Messdaten mit Simulationen kann die Identifikation der angeregten Schwingungsmode erm{\"o}glichen, was eine neue Methode darstellt, Erkenntnisse {\"u}ber die Elektron-Phonon-Kopplung in molekularen Materialien zu gewinnen.}, subject = {ARPES}, language = {de} } @phdthesis{Grimm2020, author = {Grimm, Manuel}, title = {Anwendung und Weiterentwicklung der winkelaufgel{\"o}sten Photoemission an Molek{\"u}l-Metall-Grenzfl{\"a}chen: Geometrische Struktur von Bilagenschichten und Kondoeffekt}, doi = {10.25972/OPUS-21379}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-213797}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2020}, abstract = {Im Rahmen dieser Dissertation wurden organische D{\"u}nnschichten und deren Grenzfl{\"a}chen an Metallen mittels Photoemissionsspektroskopie untersucht. Hierbei wurden, unter Einstrahlung von Photonen mit einer Energie von zumeist 20-50 eV Elektronen des Valenzbandes des zu untersuchenden Probensystems ausgel{\"o}st, und in Abh{\"a}ngigkeit der kinetischen Energie und des Austrittswinkels bzw. Impulses charakterisiert. Eine wesentliche Aufgabe dieser Arbeit war es, die technische Entwicklung experimenteller Apparaturen des letzten Jahrzehnts dazu zu verwenden, um mit m{\"o}glichst großer energetischer Aufl{\"o}sung bereits etablierte aber dennoch vielversprechende Systeme erneut zu untersuchen. Im ersten Hauptabschnitt wurden hierzu Einzel- und Doppelschichten bestehend aus Pentacenmolek{\"u}len mittels Molekularstrahlepitaxie auf einer Ag(110)-Oberfl{\"a}che abgeschieden. Eine anschließende Untersuchung der emittierten Photoelektronen mittels Impulsmikroskopie, wodurch man in der Lage ist, die Photoelektronen des gesamten oberen Halbraumes gleichzeitig zu detektieren, ergab eine Verkippung der Molek{\"u}le der ersten und zweiten Lage der Doppelschichten. Im Vergleich hierzu liegen die Molek{\"u}le der Einzelschicht flach auf dem Substrat auf. Der {\"U}bergang von der Einzel- zur Doppelschicht erwirkt demnach eine Verkippung der Molek{\"u}le der ersten Lage, welche aufgrund der direkten Wechselwirkung mit dem Substrat nicht zu erwarten war. Im weiteren Verlauf dieses Abschnittes konnten unter Verwendung eines hemisph{\"a}rischen Analysators mit hoher Energieaufl{\"o}sung weitere Feinheiten des Valenzbandspektrums, wie z.B. ein ungew{\"o}hnlicher Kurvenverlauf des Intensit{\"a}tsmaximums des zweiten besetzten Molek{\"u}lorbitals der ersten (unteren) Pentacenlage ausgemacht werden. Im zweiten Hauptabschnitt wurde eine energetisch schmale Resonanz, welche in der Literatur mit dem Kondoeffekt in Verbindung gebracht wird, im Valenzbandspektrum zweier unterschiedlicher Metall-Phthalocyaninmolek{\"u}le (Nickel- und Kupfer-Phthalocyanin) auf den drei Oberfl{\"a}chen Ag(100), Ag(110) und Ag(111) adsorbiert und auf ihre Temperaturabh{\"a}ngigkeit im Bereich von 20-300 Kelvin untersucht. Hierbei ergab sich neben der Feststellung des Vorhandenseins des Maximums auf allen drei Silber-Oberfl{\"a}chen ein energetischer Versatz dieses Maximums durch Abk{\"u}hlen der Probe im Falle der Substrate Ag(100) und Ag(110), welcher in der vorliegenden Gr{\"o}ßenordnung von bis zu 100 meV ungew{\"o}hnlich f{\"u}r bisherige bekannte Kondosysteme ist. Auf Ag(111) konnte kein signifikanter Versatz im Rahmen der Messungenauigkeit festgestellt werden. Im weiteren Verlauf wurden auch von diesen Probensystemen Messungen mittels Impulsmikroskopie durchgef{\"u}hrt, welche in den dadurch erhaltenen Impulskarten geringe Anomalien aufwiesen. Insgesamt kann das vorliegende Verhalten dieser Systeme bis zum Abschluss dieser Arbeit nicht endg{\"u}ltig erkl{\"a}rt werden. Die f{\"u}r organische Systeme h{\"o}chst ungew{\"o}hnliche Theorie der Ausbildung eines Kondogitters, in welcher die Wechselwirkung einzelner St{\"o}rstellen zur Ausbildung eines elektronenartigen Bandes f{\"u}hrt, w{\"a}re jedoch zun{\"a}chst in der Lage, ein derartiges Verhalten, wenn auch nicht in dem hier gezeigten Ausmaß, teilweise zu erkl{\"a}ren.}, subject = {Winkelaufgel{\"o}ste Photoemissionsspektroskopie}, language = {de} }