Boosting mechanical durability under high humidity by bioinspired multisite polymer for high-efficiency flexible perovskite solar cells
Abstract
Abstract Flexible perovskite solar cells (FPSCs) with high stability in moist air are required for their practical applications. However, the poor mechanical stability under high humidity air remains a critical challenge for flexible perovskite devices. Herein, inspired by the exceptional wet adhesion of mussels via dopamine groups, we propose a multidentate-cross-linking strategy, which combine multibranched structure and adequate dopamine anchor sites in three-dimensional hyperbranched polymer to directly chelate perovskite materials in multiple directions, therefore construct a vertical scaffold across the bulk of perovskite films from the bottom to the top interfaces, intimately bind to the perovskite grains and substrates with a strong adhesion ability, and enhance mechanical durability under high humidity. Consequently, the modified rigid PSCs achieve superior PCE up to 25.92%, while flexible PSCs exhibit a PCE of 24.43% and maintain 94.1% of initial PCE after 10,000 bending cycles with a bending radius of 3 mm under exposed to 65% humidity.
Article Details
Authors (13)
Zhihao Li
Chunmei Jia
State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics
Zhi Wan
Junchao Cao
Jishan Shi
Jiayi Xue
State Key Laboratory of Bioinspired Interfacial Materials Science, MOE Key Laboratory of Geriatric Diseases and Immunology, Key Laboratory of Organic Synthesis of Jiangsu Province, College of Chemistry, Chemical Engineering and Materials Science
Xirui Liu
Ningbo Institute of Materials Technology and Engineering
Hongzhuo Wu
Key Lab for Special Functional Materials of Ministry of Education, National and Local Joint Engineering Research Center for High-Efficiency Display and Lighting Technology, Collaborative Innovation Center of Nano Functional Materials and Applications, School of Nanoscience and Materials Engineering
Chuanxiao Xiao
Can Li
State Key Laboratory of Catalysis
Meng Li
Chao Zhang
Zhen Li