The Effect of Torsional Motion on Multiexciton Formation through Intramolecular Singlet Fission in Ferrocene‐Bridged Pentacene Dimers

Author:

Hayasaka Ryo1,Sakai Hayato1ORCID,Fuki Masaaki234,Okamoto Tsubasa234,Khan Ramsha5,Higashi Masahiro6,Tkachenko Nikolai V.5,Kobori Yasuhiro234,Hasobe Taku1ORCID

Affiliation:

1. Department of Chemistry Faculty of Science and Technology Keio University Yokohama Kanagawa 223–8522 Japan

2. Molecular Photoscience Research Center Kobe University 1-1 Rokkodai-cho Nada-ku Kobe 657–8501 Japan

3. Department of Chemistry Graduate School of Science Kobe University 1-1, Rokkodai-cho Nada-ku Kobe 657-8501 Japan

4. CREST, JST Honcho 4-1-8 Kawaguchi Saitama 332-0012 Japan

5. Chemistry and Advanced Materials Group Faculty of Engineering and Natural Sciences Tampere University Korkeakoulunkatu 8 33720 Tampere Finland

6. Department of Complex Systems Science Graduate School of Informatics Nagoya University Furo-cho, Chikusa-ku Nagoya 464-8601 Japan

Abstract

AbstractA series of ferrocene(Fc)‐bridged pentacene(Pc)‐dimers [Fc−Ph(2,n)−(Pc)2: n=number of phenylene spacers] were synthesized to examine the tortional motion effect of Fc‐terminated phenylene linkers on strongly coupled quintet multiexciton (5TT) formation through intramolecular singlet fission (ISF). Fc−Ph(2,4)−(Pc)2 has a relatively small electronic coupling and large conformational flexibility according to spectroscopic and theoretical analyses. Fc−Ph(2,4)−(Pc)2 exhibits a high‐yield 5TT together with quantitative singlet TT (1TT) generation through ISF. This demonstrates a much more efficient ISF than those of other less flexible Pc dimers. The activation entropy in 1TT spin conversion of Fc−Ph(2,4)−(Pc)2 is larger than those of the other systems due to the larger conformational flexibility associated with the torsional motion of the linkers. The torsional motion of linkers in 1TT is attributable to weakened metal‐ligand bonding in the Fc due to hybridization of the hole level of Pc to Fc in 1TT unpaired orbitals.

Funder

Japan Society for the Promotion of Science

Core Research for Evolutional Science and Technology

Publisher

Wiley

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