| Literature DB >> 31975446 |
Lorena Perdigón-Toro1,2, Huotian Zhang3, Anastasia Markina4, Jun Yuan5, Seyed Mehrdad Hosseini2, Christian M Wolff1, Guangzheng Zuo1, Martin Stolterfoht1, Yingping Zou5, Feng Gao3, Denis Andrienko4, Safa Shoaee2, Dieter Neher1.
Abstract
Organic solar cells are currently experiencing a second golden age thanks to the development of novel non-fullerene acceptors (NFAs). Surprisingly, some of these blends exhibit high efficiencies despite a low energy offset at the heterojunction. Herein, free charge generation in the high-performance blend of the donor polymer PM6 with the NFA Y6 is thoroughly investigated as a function of internal field, temperature and excitation energy. Results show that photocurrent generation is essentially barrierless with near-unity efficiency, regardless of excitation energy. Efficient charge separation is maintained over a wide temperature range, down to 100 K, despite the small driving force for charge generation. Studies on a blend with a low concentration of the NFA, measurements of the energetic disorder, and theoretical modeling suggest that CT state dissociation is assisted by the electrostatic interfacial field which for Y6 is large enough to compensate the Coulomb dissociation barrier.Entities:
Keywords: driving force; non-fullerene acceptors; organic solar cells; photocurrent generation
Year: 2020 PMID: 31975446 DOI: 10.1002/adma.201906763
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849