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Ionization Energies, Electron Affinities, and Polarization Energies of Organic Molecular Crystals: Quantitative Estimations from a Polarizable Continuum Model (PCM)-Tuned Range-Separated Density Functional Approach

  • We propose a new methodology for the first principles description of the electronic properties relevant for charge transport in organic molecular crystals. This methodology, which is based on the combination of a nonempirical, optimally tuned range separated hybrid functional with the polarizable continuum model, is applied to a series of eight representative molecular semiconductor crystals. We show that it provides ionization energies, electron affinities, and transport gaps in very good agreement with experimental values, as well as with the results of many-body perturbation theory-within the GW approximation at a fraction of the computational cost. Hence, this approach represents an easily applicable and computationally efficient tool to estimate the gas-to crystal phase shifts of the frontier-orbital quasiparticle energies in organic electronic materials.

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Author details:Haitao Sun, Sean Ryno, Cheng Zhong, Mahesh Kumar Ravva, Zhenrong Sun, Thomas Körzdörfer, Jean-Luc Bredas
DOI:https://doi.org/10.1021/acs.jctc.6b00225
ISSN:1549-9618
ISSN:1549-9626
Pubmed ID:https://pubmed.ncbi.nlm.nih.gov/27183355
Title of parent work (English):Journal of chemical theory and computation
Publisher:American Chemical Society
Place of publishing:Washington
Publication type:Article
Language:English
Year of first publication:2016
Publication year:2016
Release date:2020/03/22
Volume:12
Number of pages:11
First page:2906
Last Page:2916
Funding institution:King Abdullah University of Science and Technology (KAUST)
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Chemie
Peer review:Referiert
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