All-polymer organic solar cells with nano-to-micron hierarchical morphology and large light receiving angle

Rui Zeng(Shanghai Jiao Tong University), Lei Zhu(Shanghai Jiao Tong University), Ming Zhang(Shanghai Jiao Tong University), Wenkai Zhong(Shanghai Jiao Tong University), Guanqing Zhou(Shanghai Jiao Tong University), Jiaxing Zhuang(Shanghai Jiao Tong University), Tianyu Hao(Shanghai Jiao Tong University), Zichun Zhou(Shanghai Jiao Tong University), Libo Zhou(Shanghai Jiao Tong University), Nicolai F. Hartmann(Attocube Systems (Germany)), Xiaonan Xue(Beijing Solar Energy Research Institute), Jing Hao(Beijing Solar Energy Research Institute), Fei Han(North China Electric Power University), Yiming Bai(North China Electric Power University), Hongbo Wu(Donghua University), Zheng Tang(Donghua University), Yecheng Zou, Haiming Zhu(Zhejiang University), Chun‐Chao Chen(Shanghai Jiao Tong University), Yongming Zhang(Shanghai Jiao Tong University), Feng Liu(Shanghai Jiao Tong University)
Nature Communications
July 12, 2023
Cited by 279Open Access
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Abstract

Distributed photovoltaics in living environment harvest the sunlight in different incident angles throughout the day. The development of planer solar cells with large light-receiving angle can reduce the requirements in installation form factor and is therefore urgently required. Here, thin film organic photovoltaics with nano-sized phase separation integrated in micro-sized surface topology is demonstrated as an ideal solution to proposed applications. All-polymer solar cells, by means of a newly developed sequential processing, show large magnitude hierarchical morphology with facilitated exciton-to-carrier conversion. The nano fibrilar donor-acceptor network and micron-scale optical field trapping structure in combination contributes to an efficiency of 19.06% (certified 18.59%), which is the highest value to date for all-polymer solar cells. Furthermore, the micron-sized surface topology also contributes to a large light-receiving angle. A 30% improvement of power gain is achieved for the hierarchical morphology comparing to the flat-morphology devices. These inspiring results show that all-polymer solar cell with hierarchical features are particularly suitable for the commercial applications of distributed photovoltaics due to its low installation requirement.


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