Single-layered organic photovoltaics with double cascading charge transport pathways: 18% efficiencies

Ming Zhang(Shanghai Jiao Tong University), Lei Zhu(Shanghai Jiao Tong University), Guanqing Zhou(Shanghai Jiao Tong University), Tianyu Hao(Shanghai Jiao Tong University), Chaoqun Qiu(Shanghai Jiao Tong University), Zhe Zhao(Shanghai Jiao Tong University), Qin Hu(University of Massachusetts Amherst), Bryon W. Larson(National Laboratory of the Rockies), Haiming Zhu(Zhejiang University), Zaifei Ma(Donghua University), Zheng Tang(Donghua University), Wei Feng(Institute of New Materials), Yongming Zhang(Shanghai Jiao Tong University), Thomas P. Russell(University of Massachusetts Amherst), Feng Liu(Shanghai Jiao Tong University)
Nature Communications
January 12, 2021
Cited by 640Open Access
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Abstract

The chemical structure of donors and acceptors limit the power conversion efficiencies achievable with active layers of binary donor-acceptor mixtures. Here, using quaternary blends, double cascading energy level alignment in bulk heterojunction organic photovoltaic active layers are realized, enabling efficient carrier splitting and transport. Numerous avenues to optimize light absorption, carrier transport, and charge-transfer state energy levels are opened by the chemical constitution of the components. Record-breaking PCEs of 18.07% are achieved where, by electronic structure and morphology optimization, simultaneous improvements of the open-circuit voltage, short-circuit current and fill factor occur. The donor and acceptor chemical structures afford control over electronic structure and charge-transfer state energy levels, enabling manipulation of hole-transfer rates, carrier transport, and non-radiative recombination losses.


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