Noncovalently fused-ring electron acceptors with near-infrared absorption for high-performance organic solar cells

Hao Huang(Beijing Normal University), Qingxin Guo(Beijing Normal University), Shiyu Feng(Beijing Normal University), Cai’e Zhang(Beijing Normal University), Zhaozhao Bi(Xi'an Jiaotong University), Wenyue Xue(Xi'an Jiaotong University), Jinjin Yang(Donghua University), Jinsheng Song(Henan University), Cuihong Li(Beijing Normal University), Xinjun Xu(Beijing Normal University), Zheng Tang(Donghua University), Wei Ma(Xi'an Jiaotong University), Zhishan Bo(Beijing Normal University)
Nature Communications
July 10, 2019
Cited by 392Open Access
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Abstract

Non-fullerene fused-ring electron acceptors boost the power conversion efficiency of organic solar cells, but they suffer from high synthetic cost and low yield. Here, we show a series of low-cost noncovalently fused-ring electron acceptors, which consist of a ladder-like core locked by noncovalent sulfur-oxygen interactions and flanked by two dicyanoindanone electron-withdrawing groups. Compared with that of similar but unfused acceptor, the presence of ladder-like structure markedly broadens the absorption to the near-infrared region. In addition, the use of intramolecular noncovalent interactions avoids the tedious synthesis of covalently fused-ring structures and markedly lowers the synthetic cost. The optimized solar cells displayed an outstanding efficiency of 13.24%. More importantly, solar cells based on these acceptors demonstrate very low non-radiative energy losses. This research demonstrates that low-cost noncovalently fused-ring electron acceptors are promising to achieve high-efficiency organic solar cells.


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