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The charge transport properties of disordered organic and nanocrystalline inorganic semiconductors as well as their combinations have been investigated in regard to the charge carrier density employing field-effect-transistor structures. The results were discussed in the framework of different theoretical models. In organic semiconductors the presence of positional and energetic disorder determines the transport of charges through the respective thin films and interfaces. The electronic disorder is characterized by statistically distributed and localized transport sites which were shown to form a Gaussian density of states. In this electronic environment the charge transport occurs via thermally activated hopping between the localized states and therefore depends on the temperature and the local electric field. Particularly, a dependence of the carrier mobility on the charge carrier concentration is observed due to filling of tail states. Inorganic nanocrystalline semiconductors, however, are expected to present a different electronic structure: Within the volume of a nanocrystallite the semiconductor is assumed to reflect the electronic properties of the crystalline bulk material. However, the outer shell is characterized by a relatively large density of surface states and correspondingly bending of the energy bands, which creates an energetic barrier between the adjacent particles. In a nanocrystalline thin film this characteristic can be rate-limiting for the inter-particle carrier transport as reflected by reduced charge carrier mobility. The effective barrier height can be reduced by controlled doping of the nanocrystals which results in improved majority carrier transfer rates across the barrier. However, doping results in the simultaneous increase of the defect density and consequently to enhanced limitation of the mobility due to charge carrier scattering. In the experiments, thin films of commercially available p- and n-type organic semiconductors (P3HT, and two derivatives of PCBM) were investigated in field-effect transistor structures. Further, sol-gel synthesized n-type nanocrystalline-ZnO (nc-ZnO) with varied doping concentration (agent: aluminum Al$^{3+}$) was introduced in order to establish an alternative way of customizing the charge transport properties of the neat material and in combination with the organic polymer semiconductor P3HT.
Röntgenstrukturuntersuchungen an spintronischen Halbleiter- und Halbmetall-Dünnschichtsystemen
(2010)
In dieser Arbeit wurden die strukturellen Eigenschaften von spintronischen Halbleiter- und Halbmetall-Dünnschichtsystemen untersucht. Mit Röntgenreflektivitätsmessungen konnten die Schichtdicken und Grenzflächenrauigkeiten der Mehrschichtsysteme sehr genau bestimmt werden. Hierfür wurde die Software Fewlay verwendet, welche den Parratt-Formalismus zur Berechnung der Reflektivität nutzt. An reziproken Gitterkarten, die an möglichst hoch indizierten Bragg-Reflexen gemessen wurden, konnte das Relaxationsverhalten der Schichtsysteme untersucht werden.
The approach of using the combination of Ultraviolet (UPS) and Inverse Photoemission (IPS) to determine the transport levels in thin films of organic semiconductors is the scope of this work. For this matter all influences on the peak position and width in Photoelectron Spectroscopy are discussed with a special focus on organic semiconductors. Many of these influences are shown with experimental results of the investigation of diindenoperylene on Ag(111). These findings are applied to inorganic semiconductors silicon in order to establish the use of UPS and IPS on a well-understood system. Finally, the method is used to determine the transport level of several organic semiconductors (PTCDA, Alq3, CuPc, DIP, PBI-H4) and the corresponding exciton binding energies are calculated by comparison to optical absorption data.
Die vorliegende Arbeit befasste sich mit dem Spin- und dem damit eng verbundenen Polarisationszustand von Ladungsträgern in CdSe/ZnSe Quantenpunkten. II-VI Materialsysteme können in geeigneter Weise mit dem Nebengruppenelement Mangan gemischt werden. Diese semimagnetischen Nanostrukturen weisen eine Vielzahl von charakteristischen optischen und elektrischen Besonderheiten auf. Verantwortlich dafür ist eine Austauschwechselwirkung zwischen dem Spin optisch erzeugter Ladungsträger und den 3d Elektronen der Mn Ionen. Im Rahmen dieser Arbeit erfolgte die Adressierung gezielter Spinzustände durch optische Anregung der Ladungsträger. Die Besetzung unterschiedlicher Spinzustände konnte durch Detektion des Polarisationsgrades der emittierten Photolumineszenz (PL) bestimmt werden. Dabei kamen verschiedene optische Methoden wie zeitaufgelöste und zeitintegrierte PL-Spektroskopie sowie Untersuchungen in Magnetfeldern zum Einsatz.