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In dieser Arbeit wurden methodenübergreifend die Adsorbatsysteme CuPc/Ag(111), CuPc/Au(111), CuPc/Cu(111), H2Pc/Ag(111) und TiOPc/Ag(111) untersucht und detailliert charakterisiert. Der Schwerpunkt der Experimente lag in der Bestimmung der lateralen geometrischen Strukturen mit hochauflösender Elektronenbeugung (SPA-LEED) und Rastertunnelmikroskopie (STM), sowie der Adsorptionshöhen mit der Methode der stehenden Röntgenwellenfeldern (NIXSW). Hochauflösende Elektronenenergieverlustspektroskopie (HREELS) wurde verwendet, um die vibronische Struktur und den dynamischen Ladungstransfer an der Grenzfläche zu charakterisieren. Die elektronische Struktur und der Ladungstransfer in die Moleküle wurde mit ultraviolett Photoelektronenspektroskopie (UPS) gemessen. Die wichtigsten Ergebnisse dieser Arbeit betreffen den Zusammenhang zwischen Adsorbat-Substrat Wechselwirkung und der Adsorbat-Adsorbat Wechselwirkung von Phthalocyaninen im Submonolagenbereich.
In this thesis, I present a model system for carbohydrate interactions with single-crystalline Ru surfaces. Geometric and electronic properties of copper phthalocyanine (CuPc) on top of graphene on hexagonal Ru(0001), rectangular Ru(10-10) and vicinal Ru(1,1,-2,10) surfaces have been studied. First, the Fermi surfaces and band structures of the three Ru surfaces were investigated by high-resolution angle-resolved photoemission spectroscopy. The experimental data and theoretical calculations allow to derive detailed information about the momentum-resolved electronic structure. The results can be used as a reference to understand the chemical and catalytic properties of Ru surfaces. Second, graphene layers were prepared on the three different Ru surfaces. Using low-energy electron diffraction and scanning tunneling microscopy, it was found that graphene can be grown in well-ordered structures on all three surfaces, hexagonal Ru(0001), rectangular Ru(10-10) and vicinal Ru(1,1,-2,10), although they have different surface symmetries. Evidence for a strong interaction between graphene and Ru surfaces is a 1.3-1.7e V increase in the graphene pi-bands binding energy with respect to free-standing graphene sheets. This energy variation is due to the hybridization between the graphene pi bands and the Ru 4d electrons, while the lattice mismatch does not play an important role in the bonding between graphene and Ru surfaces. Finally, the geometric and electronic structures of CuPc on Ru(10-10), graphene/Ru(10-10), and graphene/Ru(0001) have been studied in detail. CuPc molecules can be grown well-ordered on Ru(10-10) but not on Ru(0001). The growth of CuPc on graphene/Ru(10-10) and Ru(0001) is dominated by the Moire pattern of graphene. CuPc molecules form well-ordered structures with rectangular unit cells on graphene/Ru(10-10) and Ru(0001). The distance of adjacent CuPc molecules is 1.5 and 1.3 nm on graphene/Ru(0001) and 1.54 and 1.37 nm on graphene/Ru(10-10). This indicates that the molecule-substrate interaction dominates over the intermolecular interaction for CuPc molecules on graphene/Ru(10-10) and graphene/Ru(0001).