Morphology Control Enables Efficient Ternary Organic Solar Cells

Ternary organic solar cells are promising alternatives to the binary counterpart due to their potential in achieving high performance. Although a growing number of ternary organic solar cells are recently reported, less effort is devoted to morphology control. Here, ternary organic solar cells are f...

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Veröffentlicht in:Advanced materials (Weinheim) 2018-09, Vol.30 (38), p.e1803045-n/a
Hauptverfasser: Xie, Yuanpeng, Yang, Fan, Li, Yuxiang, Uddin, Mohammad Afsar, Bi, Pengqing, Fan, Bingbing, Cai, Yunhao, Hao, Xiaotao, Woo, Han Young, Li, Weiwei, Liu, Feng, Sun, Yanming
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Sprache:eng
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Zusammenfassung:Ternary organic solar cells are promising alternatives to the binary counterpart due to their potential in achieving high performance. Although a growing number of ternary organic solar cells are recently reported, less effort is devoted to morphology control. Here, ternary organic solar cells are fabricated using a wide‐bandgap polymer PBT1‐C as the donor, a crystalline fused‐ring electron acceptor ITIC‐2Cl, and an amorphous fullerene derivative indene‐C60 bisadduct (ICBA) as the acceptor. It is found that ICBA can disturb π–π interactions of the crystalline ITIC‐2Cl molecules in ternary blends and then help to form more uniform morphology. As a result, incorporation of 20% ICBA in the PBT1‐C:ITIC‐2Cl blend enables efficient charge dissociation, negligible bimolecular recombination, and balanced charge carrier mobilities. An impressive power conversion efficiency (PCE) of 13.4%, with a high fill factor (FF) of 76.8%, is eventually achieved, which represents one of the highest PCEs reported so far for organic solar cells. The results manifest that the adoption of amorphous fullerene acceptor is an effective approach to optimizing the ternary blend morphology and thereby increases the solar cell performance. Ternary organic solar cells based on a wide‐bandgap polymer donor (PBT1‐C), a fullerene derivative indene‐C60 bisadduct (ICBA), and a crystalline fused‐ring electron acceptor (ITIC‐2Cl) yield an impressive efficiency of 13.4%, and a high fill factor of 76.8%, indicating that the use of an amorphous fullerene acceptor is an effective way to optimize the ternary blend morphology.
ISSN:0935-9648
1521-4095
DOI:10.1002/adma.201803045