Advanced Functional Materials · 2009 · 212 citations · 26 references
EngineeringOrganic–organic InterfacesOrganic ElectronicsOrganic ChemistryComputational ChemistryChemistryElectronic StructureGeminate Pair EnergeticsFullereneOrganic SemiconductorQuantum ChemistryDonor MoleculeOrganic Material ChemistryElectronic MaterialsNatural SciencesApplied PhysicsCrystal OrientationLocalized StatesMolecule-based Material
Abstract Organic semiconductors are characterized by localized states whose energies are predominantly determined by electrostatic interactions with their immediate molecular environment. As a result, the details of the energy landscape at heterojunctions between different organic semiconductors cannot simply be deduced from those of the individual semiconductors, and they have so far remained largely unexplored. Here, microelectrostatic computations are performed to clarify the nature of the electronic structure and geminate pair energetics at the pentacene/C 60 interface, as archetype for an interface between a donor molecule and a fullerene electron acceptor. The size and orientation of the molecular quadrupole moments, determined by material choice, crystal orientation, and thermodynamic growth parameters of the semiconductors, dominate the interface energetics. Not only do quadrupoles produce direct electrostatic interactions with charge carriers, but, in addition, the discontinuity of the quadrupole field at the interface induces permanent interface dipoles. That discontinuity is particularly striking for an interface with C 60 molecules, which by virtue of their symmetry possess no quadrupole. Consequently, at a pentacene/C 60 interface, both the vacuum‐level shift and geminate pair dissociation critically depend on the orientation of the pentacene π‐system relative to the adjacent C 60 .
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The feynman lectures on physics
A. Shalit · Journal of the Franklin Institute · 1967 · 2.3K citations
Photocurrent Generation in Polymer-Fullerene Bulk Heterojunctions
V.D. Mihailetchi, L. Jan Anton Koster, Jan C. Hummelen et al. · Physical Review Letters · 2004 · 1K citations · Full text