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Molecular Doping Processes in Organic Semiconductors investigated by Photoelectron Spectroscopy

Molecular doping is a key technique for realizing high efficient organic light-emitting diodes (OLEDs) and photovoltaics (OPV). Furthermore, its most recent application in organic field-effect transistors (OFETs) marks a milestone on the roadmap towards flexible organic CMOS technology. However, in contrast to silicon based devices, the understanding of the fundamental processes of molecular doping is still controversially discussed. This work aims at the detailed analysis of the molecular doping process by employing Photoelectron spectroscopy (PES) on various doped thin-films prepared by co-evaporation in vacuum. Here, the focus is on explanation of the experimental findings by a statistical description in order to contribute to the fundamental understanding of the doping mechanism.

First, the Fermi level shifts in thin-films of the common hole transport materials MeO-TPD, ZnPc, and pentacene p-doped by the acceptors C60F36 and F6-TCNNQ are studied. The precise control of molar doping ratios as low as 1e−5 is demonstrated, allowing analysis of the doping properties in a much broader range as previously accessible. Characteristic kinks and slopes in the Fermi level vs. doping concentration diagrams are found.

Furthermore, the doping efficiency is found to decrease with increasing doping concentrations to just a few percent at molar ratios above 0.1. By numerically solving the charge neutrality equation using a classical semiconductor physics approach, these findings are explained by trap-limitation, dopant saturation, and reserve regimes as known from inorganic semiconductor physics. Using the example of p-doped MeO-TPD thin-films, it is finally demonstrated that the density of deep gap states depends on the purity degree of the host material. Similar studies are conducted on thin-films of C60, ZnPc, and pentacene n-doped by the di-metal complex W2(hpp)4. The corresponding Fermi level plots possess also host material specific kinks and slopes, which however, can be explained by application of the statistical doping description and assuming just dopant saturation and trap-limitation. Furthermore, it is demonstrated that electron traps with defined density can intentionally be introduced in pentacene by co-evaporation of C60 and gradually filled-up by n-doping with W2(hpp)4.

In contrast to p-dopants, the highly efficient n-dopant W2(hpp)4 is prone to degradation in air due to its low IP of just 2.4eV. Therefore, the degradation of pure films of W2(hpp)4 as well as of n-doped films applying various host materials is studied under air exposure by conductivity measurements and PES. An unexpected (partial) passivation of W2(hpp)4 molecules against oxidation is found, however, this effect is identified to depend on the energy levels of the used host material. This finding is explained by a down-shift of the W2(hpp)4 energy levels upon charge transfer to a host material with deeper lying energy levels and thus allows for new conclusions on the relative alignment of the energy levels of dopant and host molecules in doped films in general.

The maximum open-circuit voltage Voc of BHJ solar cells is limited by the effective HOMO(donor)-LUMO(acceptor) gap of the photo-active absorber blend. Therefore, the relative energy levels within ZnPc:C60 blend layers are furthermore investigated by PES, identifying an increase of the HOMO(ZnPc)-LUMO(C60) gap by 0.25 eV when varying the blend stoichiometry from 6:1 to 1:6. The trend in this gap correlates with observed changes in Voc of respective BHJ solar cells as well as with measured charge transfer energies. As physical origins for the changed energy levels, a suppressed crystallization of the C60 phase due to presence of donor molecules as well as concentration-dependent growth modes of the ZnPc phase are discussed.

Identiferoai:union.ndltd.org:DRESDEN/oai:qucosa:de:qucosa:27194
Date30 July 2014
CreatorsTietze, Max Lutz
ContributorsLeo, Karl, Fritz, Torsten, Technische Universität Dresden
Source SetsHochschulschriftenserver (HSSS) der SLUB Dresden
LanguageEnglish
Detected LanguageEnglish
Typedoc-type:doctoralThesis, info:eu-repo/semantics/doctoralThesis, doc-type:Text
Rightsinfo:eu-repo/semantics/openAccess

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