Ultrafast Exciton Dissociation in Block Copolymer toward Efficient Single Material Organic Solar Cells

Author:

Li Tao1,Li Bin2,Zhou Haoxiang1,Wang Jun13,Ni Gang1,Ma Wanli24ORCID,Sheng Chuanxiang13,Yuan Jianyu25,Zhao Haibin13ORCID

Affiliation:

1. Shanghai Ultra‐precision Optical Manufacturing Engineering Research Center and Key Laboratory of Micro & Nano Photonic Structures (Ministry of Education) Department of Optical Science & Engineering Fudan University Shanghai 200433 China

2. Institute of Functional Nano & Soft Materials (FUNSOM) Soochow University Suzhou Jiangsu 215123 China

3. Shanghai Frontiers Science Research Base of Intelligent Optoelectronics & Perception and State Key Laboratory of Photovoltaic Science & Technology Institute of Optoelectronics Fudan University Shanghai 200433 China

4. Jiangsu Key Laboratory for Carbon‐Based Functional Materials & Devices Soochow University Suzhou Jiangsu 215123 China

5. Jiangsu Key Laboratory of Advanced Negative Carbon Technologies Soochow University Suzhou Jiangsu 215123 China

Abstract

AbstractThe study reports for the first time on the ultrafast dynamics of charge transfer (CT) and exciton dissociation in block copolymer PBDB‐T‐b‐PTY6‐based state‐of‐the‐art single‐material organic solar cells (SMOSCs). From the transient absorption spectroscopy of the dilute PBDB‐T‐b‐PTY6 in the insulating polystyrene, exciton dissociation and hole transfer (HT) processes at the intramolecular interface of covalent linkage between the donor and acceptor segment are achieved. In comparison to the charge generation in blend PBDB‐T:PTY6 films, it is found that the HT rate in the isolated block copolymer chain via the intramolecular channel is approximately an order of magnitude higher than that via the intermolecular channel. Much faster exciton dissociation in the dilute PBDB‐T‐b‐PTY6 film than in the blend film from electro‐absorption and polaron‐absorption signals is also verified. The intrachain chemical interface in the block copolymer is thus more conducive to the HT path than the traditional interface in the bulk heterojunction. Moreover, though the PBDB‐T‐b‐PTY6 film has weak molecular ordering, its overall CT efficiency is comparable to that of the PBDB‐T:PTY6 film. These findings portend that further molecular design with optimized ordering toward fast intramolecular exciton dissociation may contribute to SMOSCs with higher power conversion efficiency.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Natural Science Foundation of Jiangsu Province

Priority Academic Program Development of Jiangsu Higher Education Institutions

Publisher

Wiley

Subject

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

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