4.6 Article

Molecular Charge Transfer Effects on Perylene Diimide Acceptor and Dinaphthothienothiophene Donor Systems

Journal

JOURNAL OF PHYSICAL CHEMISTRY C
Volume 126, Issue 8, Pages 4188-4198

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpcc.1c10281

Keywords

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Funding

  1. German Research Foundation (Deutsche Forschungsgemeinschaft, DFG) [SCHR 700/20-2]
  2. German Research Foundation from the German Federal Ministry of Education and Research (Professorinnen-programm III) [182087777, CRC 951]
  3. State of Lower Saxony (Professorinnen fur Niedersachsen)
  4. North-German Supercomputing Alliance (HLRN) [bep00076]

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A comprehensive investigation on cocrystal formation and charge transfer effects in weakly interacting organic semiconductor mixtures is presented. The study reveals small ground-state charge transfer effects in both systems and the localized energy levels on the acceptor and donor molecules in the complex.
The interactions between organic donor and acceptor molecules and the related charge transfer (CT) effects are of great interest in organic optoelectronics. Here, we present a comprehensive investigation of cocrystal formation and charge transfer effects in weakly interacting organic semiconductor mixtures. As a model system, we choose dinaphthothienothiophene (DNTT) as a donor molecule and two different perylene diimide derivatives (PTCDI-C-8-CN2 and PDIF-CN2) as acceptors, which differ in the fluorination of the side chains in the imide position. Experimentally, both systems show a small ground-state CT governed by hybridized HOMO-1 and LUMO+1 levels. In contrast, the respective HOMO and LUMO levels of the complex are localized on the acceptor and donor molecule. This leads to the observation of a nearly pure charge transfer excitation from the acceptor to the donor in the absorption spectra. We discuss the general impact of localized HOMO and LUMO levels on the optoelectronic properties in CT complexes dependent on comparison with first-principles calculations based on density functional theory and many-body perturbation theory.

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