Song Fei, Zheng Dexu, Feng Jiangshan, Liu Jishuang, Ye Tao, Li Zhipeng, Wang Kai, Liu Shengzhong Frank, Yang Dong
Key Laboratory of Applied Surface and Colloid Chemistry, Ministry of Education, Shaanxi Engineering Lab for Advanced Energy Technology, School of Materials Science and Engineering, Shaanxi Normal University, Xi'an, 710119, China.
Dalian National Laboratory for Clean Energy, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, 116023, China.
Adv Mater. 2024 May;36(18):e2312041. doi: 10.1002/adma.202312041. Epub 2024 Jan 29.
The remarkable progress in perovskite solar cell (PSC) technology has witnessed a remarkable leap in efficiency within the past decade. As this technology continues to mature, flexible PSCs (F-PSCs) are emerging as pivotal components for a wide array of applications, spanning from powering portable electronics and wearable devices to integrating seamlessly into electronic textiles and large-scale industrial roofing. F-PSCs characterized by their lightweight, mechanical flexibility, and adaptability for cost-effective roll-to-roll manufacturing, hold immense commercial potential. However, the persistent concerns regarding the overall stability and mechanical robustness of these devices loom large. This comprehensive review delves into recent strides made in enhancing the mechanical stability of F-PSCs. It covers a spectrum of crucial aspects, encompassing perovskite material optimization, precise crystal grain regulation, film quality enhancement, strategic interface engineering, innovational developed flexible transparent electrodes, judicious substrate selection, and the integration of various functional layers. By collating and analyzing these dedicated research endeavors, this review illuminates the current landscape of progress in addressing the challenges surrounding mechanical stability. Furthermore, it provides valuable insights into the persistent obstacles and bottlenecks that demand attention and innovative solutions in the field of F-PSCs.
在过去十年中,钙钛矿太阳能电池(PSC)技术取得了显著进展,其效率实现了大幅飞跃。随着这项技术不断成熟,柔性PSC(F-PSC)正成为一系列应用的关键组件,从为便携式电子设备和可穿戴设备供电,到无缝集成到电子纺织品和大规模工业屋顶中。F-PSC具有重量轻、机械柔韧性以及适合经济高效的卷对卷制造等特点,具有巨大的商业潜力。然而,这些器件的整体稳定性和机械坚固性一直备受关注。这篇综述深入探讨了在提高F-PSC机械稳定性方面取得的最新进展。它涵盖了一系列关键方面,包括钙钛矿材料优化、精确的晶粒调控、薄膜质量提升、战略性界面工程、创新开发的柔性透明电极、明智的衬底选择以及各种功能层的集成。通过整理和分析这些专门的研究成果,本综述阐明了在应对机械稳定性挑战方面的当前进展情况。此外,它还为F-PSC领域中需要关注和创新解决方案的持续障碍和瓶颈提供了有价值的见解。