Synergistic Toughening and Strain Releasing Strategy in Metal Halide Perovskite Photovoltaics

Author:

Wang Chenyun1,Shang Chuanzhen1,Feng Haoyang1,Lei Yudong2,Qu Duo1,Zhou Bin1,Zhang Xinyue1,Hu Hanwei1,Zhang Yajie1,Zhang Zhanfei3,Li Bin3,Bao Zheng4,Ye Fengjun4,Zheng Zebang2,Wang Zhenhua1,Sun Lijie3,Tu Yongguang1ORCID

Affiliation:

1. Frontiers Science Center for Flexible Electronics Institute of Flexible Electronics (IFE) MIIT Key Laboratory of Flexible Electronics Shaanxi Key Laboratory of Flexible Electronics Northwestern Polytechnical University Xi'an Shaanxi 710072 China

2. State Key Laboratory of Solidification Processing Shaanxi Key Laboratory of High‐Performance Precision Forming Technology and Equipment School of Materials Science and Engineering Northwestern Polytechnical University Xi'an Shaanxi 710072 China

3. State Key Laboratory of Space Power Sources Shanghai Institute of Space Power‐Sources Shanghai 200245 China

4. Beijing Solarverse Optoelectronic Technology Co., Ltd Beijing 100176 China

Abstract

AbstractMetal halide perovskite with high Young's modulus is prone to form cracks when subjected to mechanical stresses such as bending, twisting, or impacting, ultimately leading to a permanent decline in the performance of their photovoltaic devices. These mechanical properties pose challenges to the durability of long‐term service of photovoltaic devices and the production of flexible devices. To address this issue, the poly (lipoic acid‐co‐Styrene) elastomer is employed to modulate the modulus of perovskite films. The peak force quantitative nanomechanical atomic force microscopy measurements and nanoindentation tests demonstrated a reduction in modulus, with the lower modulus preventing the formation of cracks and defects during deformation. Moreover, this approach also suppressed the non‐radiative recombination of perovskite solar cells by leveraging the interaction between functional groups and defects. Through this method, the rigid inverted devices attained a power conversion efficiency of 24.42% alongside remarkable stability. Concurrently, flexible inverted devices achieved a power conversion efficiency of 22.21%. This strategy offers a promising avenue for fabricating flexible perovskite solar cells and enhancing their mechanical durability.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Natural Science Basic Research Program of Shaanxi Province

Publisher

Wiley

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