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Absorption Tails of Donor

  • In disordered organic semiconductors, the transfer of a rather localized charge carrier from one site to another triggers a deformation of the molecular structure quantified by the intramolecular relaxation energy. A similar structural relaxation occurs upon population of intermolecular charge-transfer (CT) states formed at organic electron donor (D)-acceptor (A) interfaces. Weak CT absorption bands for D A complexes occur at photon energies below the optical gaps of both the donors and the C-60 acceptor as a result of optical transitions from the neutral ground state to the ionic CT state. In this work, we show that temperature-activated intramolecular vibrations of the ground state play a major role in determining the line shape of such CT absorption bands. This allows us to extract values for the relaxation energy related to the geometry change from neutral to ionic CT complexes. Experimental values for the relaxation energies of 20 D:C-60 CT complexes correlate with values calculated within density functional theory. These resultsIn disordered organic semiconductors, the transfer of a rather localized charge carrier from one site to another triggers a deformation of the molecular structure quantified by the intramolecular relaxation energy. A similar structural relaxation occurs upon population of intermolecular charge-transfer (CT) states formed at organic electron donor (D)-acceptor (A) interfaces. Weak CT absorption bands for D A complexes occur at photon energies below the optical gaps of both the donors and the C-60 acceptor as a result of optical transitions from the neutral ground state to the ionic CT state. In this work, we show that temperature-activated intramolecular vibrations of the ground state play a major role in determining the line shape of such CT absorption bands. This allows us to extract values for the relaxation energy related to the geometry change from neutral to ionic CT complexes. Experimental values for the relaxation energies of 20 D:C-60 CT complexes correlate with values calculated within density functional theory. These results provide an experimental method for determining the polaron relaxation energy in solid-state organic D-A blends and show the importance of a reduced relaxation energy, which we introduce to characterize thermally activated CT processes.show moreshow less

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Author details:Koen Vandewal, Johannes Benduhn, Karl Sebastian Schellhammer, Tim VangervenORCiD, Janna E. Rückert, Fortunato Piersimoni, Reinhard Scholz, Olaf Zeika, Yeli Fan, Stephen Barlow, Dieter NeherORCiDGND, Seth R. Marder, Jean Manca, Donato SpoltoreORCiD, Gianaurelio CunibertiORCiD, Frank Ortmann
DOI:https://doi.org/10.1021/jacs.6b12857
ISSN:0002-7863
Pubmed ID:https://pubmed.ncbi.nlm.nih.gov/28068763
Title of parent work (English):Journal of the American Chemical Society
Subtitle (English):C-60 Blends Provide Insight into Thermally Activated Charge-Transfer Processes and Polaron Relaxation
Publisher:American Chemical Society
Place of publishing:Washington
Publication type:Article
Language:English
Date of first publication:2017/02/01
Publication year:2017
Release date:2022/07/01
Volume:139
Issue:4
Number of pages:6
First page:1699
Last Page:1704
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik und Astronomie
DDC classification:5 Naturwissenschaften und Mathematik / 53 Physik / 530 Physik
Peer review:Referiert
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