Wu Jinpeng, Liu Shun-Chang, Li Zongbao, Wang Shuo, Xue Ding-Jiang, Lin Yuan, Hu Jin-Song
Beijing National Laboratory for Molecular Sciences (BNLMS), Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China.
School of Material and Chemical Engineering, Tongren University, Tongren 554300, China.
Natl Sci Rev. 2021 Mar 23;8(8):nwab047. doi: 10.1093/nsr/nwab047. eCollection 2021 Aug.
Metal halide perovskite solar cells (PSCs) have seen an extremely rapid rise in power conversion efficiencies in the past few years. However, the commercialization of this class of emerging materials still faces serious challenges, one of which is the instability against external stimuli such as moisture, heat and irradiation. Much focus has deservedly been placed on understanding the different origins of intrinsic instability and thereby enhancing their stability. Among these, tensile strain in perovskite films is an important source of instability that cannot be overcome using conventionally extrinsic stabilization approaches such as encapsulation. Here we review recent progress in the understanding of the origin of strain in perovskites as well as its corresponding characterization methods, and their impacts on the physical properties of perovskites and the performance of PSCs including efficiency and stability. We then summarize the latest advances in strain-regulation strategies that improve the intrinsic stability of perovskites and photovoltaic devices. Finally, we provide a perspective on how to make further progress in stable and high-efficiency PSCs via strain engineering.
在过去几年中,金属卤化物钙钛矿太阳能电池(PSC)的功率转换效率急剧提高。然而,这类新兴材料的商业化仍面临严峻挑战,其中之一是对水分、热量和辐射等外部刺激不稳定。理所当然,人们将大量精力放在了理解固有不稳定性的不同根源上,从而提高其稳定性。其中,钙钛矿薄膜中的拉伸应变是一个重要的不稳定来源,采用诸如封装等传统的外在稳定方法无法克服这一问题。在此,我们综述了在理解钙钛矿中应变的起源及其相应表征方法方面的最新进展,以及它们对钙钛矿物理性质和PSC性能(包括效率和稳定性)的影响。然后,我们总结了改善钙钛矿和光伏器件固有稳定性的应变调控策略的最新进展。最后,我们就如何通过应变工程在稳定高效的PSC方面取得进一步进展提供了一个观点。