The Mechanism of the Photodimerization of [60]Fullerene Derivatives: It is Still a Charge Separation Followed by a Back Transfer!

Author:

Martynov Ilya V.1,Mumyatov Alexander V.1,Gutsev Lavrenty G.1,Inasaridze Liana N.1,Kulikov Alexander V.1,Troshin Pavel A.123ORCID

Affiliation:

1. Federal Research Center of Problems of Chemical Physics and Medicinal Chemistry of the Russian Academy of Sciences Academician Semenov Avenue 1 Chernogolovka Moscow 142432 Russian Federation

2. Harbin Institute of Technology 92 West Dazhi Street, Nan Gang District Harbin Heilongjiang 150001 P. R. China

3. Zhengzhou Research Institute of HIT 26 Longyuan East 7th, Jinshui District Zhengzhou Henan 450000 P. R. China

Abstract

AbstractHerein, we present a systematic study of the photochemical behavior of a set of fullerene compounds bearing various organic addends attached to the fullerene cage. It has been shown that the yield of photodimerization products strongly depends on the structure and electronic properties of the material, primarily the electron affinity (acceptor strength) of the modified fullerene core. This finding being inconsistent with the conventional [2+2]cycloaddition mechanism and pointed to an alternative pathway. This proposed pathway involves photoinduced charge separation followed by back charge transfer events leading to the efficient generation of triplet excitons, which are responsible for the formation of dimerized species. The light‐induced charge separation pathway was confirmed by electron spin resonance spectroscopy and was supported by theoretical calculations. The revealed mechanism allows one to control the photochemical behavior of the fullerene derivatives via rational structural engineering: some of the compounds were shown to be fully resistant to photodimerization, which makes them promising candidates in the development of stable organic photovoltaics. Furthermore, this approach could be used to suppress back charge transfer in donor‐acceptor blends and hinder the formation of triplet excitons which represents one a major energy loss channel in the current generation of organic solar cells.

Funder

Russian Science Foundation

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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