High Thermal Conductivity of Liquid Crystal Elastomer for Stress‐Less Flexible Perovskite Solar Cells

Author:

Ma Yabin1,You Jiaxue2,Zhang Lu1,Chen Ran3,Zeng Hanqing1,Ge Jinghao1,Li Kun1,Ma Xiaokang4,Jen Alex K.‐Y.2,Liu Shengzhong (Frank)56ORCID

Affiliation:

1. Key Laboratory of Applied Surface and Colloid Chemistry Ministry of Education Shaanxi Key Laboratory for Advanced Energy Devices Shaanxi Engineering Lab for Advanced Energy Technology International Joint Research Center of Shaanxi Province for Photoelectric Materials Science Institute for Advanced Energy Materials School of Materials Science and Engineering Shaanxi Normal University Xi'an 710119 China

2. Department of Materials Science and Engineering Hong Kong Institute for Clean Energy City University of Hong Kong Kowloon Hong Kong 999077 China

3. School of Materials Science and Engineering Xi'an University of Science and Technology Xi'an Shaanxi 710054 P. R. China

4. State Key Laboratory of Solidification Processing Northwestern Polytechnical University Xi'an Shaanxi 710072 P. R. China

5. Dalian National Laboratory for Clean Energy iChEM Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China

6. Center of Materials Science and Optoelectronics Engineering University of the Chinese Academy of Sciences Beijing 100049 China

Abstract

AbstractFlexible perovskite solar cells (FPSCs) have gained considerable attention for potential applications in portable and wearable electronics. However, the design principles governing FPSCs remain incompletely understood. In this study, two critical factors—thermal conductivity and elastic modulus—that significantly influence the thermal and mechanical stabilities of FPSCs are identified. Achieving stress‐less conditions is crucial for enhancing the performance of FPSCs. To address this, a liquid crystal elastomer (LCE) is employed as a buffer interlayer to effectively mitigate residual thermal stress. This is achieved by improving the thermal conductivity of the electron transport layer from 0.76 to 1.07 W mK−1 and softening the perovskite layer, reducing the Young's modulus from 50 to 42 GPa. The optimized thin films are utilized in both rigid and flexible PSCs, resulting in efficiencies of 24.5% and 22.8%, respectively. Remarkably, these devices demonstrated excellent thermal stability, with unpackaged LCE rigid PSCs retaining 85.6% of their initial efficiency after 504 h of aging at 85 °C. Moreover, robust mechanical stability in FPSCs is exhibited, with 88.4% of the original efficiency retained after 5400 bending cycles. This investigation elucidates the profound impact of thermal conductivity and Young's modulus on the efficiency and stability of flexible electronics.

Funder

Dalian National Laboratory for Clean Energy

Higher Education Discipline Innovation Project

China Postdoctoral Science Foundation

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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