| Literature DB >> 34326239 |
Nengxu Li1,2, Xiuxiu Niu1,2, Liang Li2, Hao Wang1,3, Zijian Huang2, Yu Zhang2, Yihua Chen2, Xiao Zhang1, Cheng Zhu1, Huachao Zai2, Yang Bai1, Sai Ma1, Huifen Liu2, Xixia Liu2, Zhenyu Guo2, Guilin Liu4, Rundong Fan2, Hong Chen5, Jianpu Wang5, Yingzhuo Lun6, Xueyun Wang6, Jiawang Hong6, Haipeng Xie7, Devon S Jakob8, Xiaoji G Xu8, Qi Chen9, Huanping Zhou10.
Abstract
Solution processing of semiconductors is highly promising for the high-throughput production of cost-effective electronics and optoelectronics. Although hybrid perovskites have potential in various device applications, challenges remain in the development of high-quality materials with simultaneously improved processing reproducibility and scalability. Here, we report a liquid medium annealing (LMA) technology that creates a robust chemical environment and constant heating field to modulate crystal growth over the entire film. Our method produces films with high crystallinity, fewer defects, desired stoichiometry, and overall film homogeneity. The resulting perovskite solar cells (PSCs) yield a stabilized power output of 24.04% (certified 23.7%, 0.08 cm2) and maintain 95% of their initial power conversion efficiency (PCE) after 2000 hours of operation. In addition, the 1-cm2 PSCs exhibit a stabilized power output of 23.15% (certified PCE 22.3%) and keep 90% of their initial PCE after 1120 hours of operation, which illustrates their feasibility for scalable fabrication. LMA is less climate dependent and produces devices in-house with negligible performance variance year round. This method thus opens a new and effective avenue to improving the quality of perovskite films and photovoltaic devices in a scalable and reproducible manner.Entities:
Year: 2021 PMID: 34326239 DOI: 10.1126/science.abh3884
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728