Adsorption Structures Affecting the Electronic Properties and Photoinduced Charge Transfer at Perylene‐Based Molecular Interfaces

Author:

Wirsing Sara1,Hänsel Marc2,Craciunescu Luca1ORCID,Belova Valentina3ORCID,Schreiber Frank4ORCID,Broch Katharina4ORCID,Engels Bernd1ORCID,Tegeder Petra2ORCID

Affiliation:

1. Institut für Physikalische und Theoretische Chemie Universität Würzburg Emil-Fischer-Straße 42 97074 Würzburg Germany

2. Physikalisch-Chemisches Institut Universität Heidelberg Im Neuenheimer Feld 253 69120 Heidelberg Germany

3. European Synchrotron Radiation Facility (ESRF) 71, avenue des Martyrs CS 40220 38043 Grenoble Cedex 9 France

4. Institut für Angewandte Physik Universität Tübingen Auf der Morgenstelle 10 72076 Tübingen Germany

Abstract

AbstractPerylene‐based organic semiconductors are widely used in organic electronic devices. Here, we studied the ultrafast excited state dynamics after optical excitation at interfaces between the electron donor (D) diindenoperylene (DIP) and the electron acceptor (A) dicyano‐perylene‐bis(dicarboximide) (PDIR‐CN2) using femtosecond time‐resolved second harmonic generation (SHG) in combination with large scale quantum chemical calculations. Thereby, we varied in bilayer structures of DIP and PDIR‐CN2 the interfacial molecular geometry. For an interfacial configuration which contains a edge‐on geometry but also additional face‐on domains an optically induced charge transfer (CT) is observed, which leads to a pronounced increase of the SHG signal intensity due to electric field induced second harmonic generation. The interfacial CT state decays within 7.5±0.7 ps, while the creation of hot CT states leads to a faster decay (5.3±0.2 ps). For the bilayer structures with mainly edge‐on geometries interfacial CT formation is suppressed since ππ overlap perpendicular to the interface is missing. Our combined experimental and theoretical study provides important insights into D/A charge transfer properties, which is needed for the understanding of the interfacial photophysics of these molecules.

Funder

Heidelberg Graduate School of Fundamental Physics

Publisher

Wiley

Subject

General Chemistry,Biochemistry,Organic Chemistry

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