Zhang Jiakang, Niu Xueqing, Peng Cheng, Jiang Haokun, Yu Le, Zhou Hong, Zhou Zhongmin
College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, 266042, Qingdao, P. R. China.
Angew Chem Int Ed Engl. 2023 Dec 11;62(50):e202314106. doi: 10.1002/anie.202314106. Epub 2023 Nov 8.
The migration of ions is known to be associated with various detrimental phenomena, including current density-voltage hysteresis, phase segregation, etc., which significantly limit the stability and performance of perovskite solar cells, impeding their progress toward commercial applications. To address these challenges, we propose incorporating a polymerizable organic small molecule monomer, N-carbamoyl-2-propan-2-ylpent-4-enamide (Apronal), into the perovskite film to form a crosslinked polymer (P-Apronal) through thermal crosslinking. The carbonyl and amino groups in Apronal effectively interact with shallow defects, such as uncoordinated Pb and iodide vacancies, leading to the formation of high-quality films with enhanced crystallinity and reduced lattice strain. Furthermore, the introduction of P-Apronal improves energy level alignment, and facilitates charge carrier extraction and transport, resulting in a champion efficiency of 25.09 %. Importantly, P-Apronal can effectively suppress the migration of I ions and improve the long-term stability of the devices. The present strategy sets forth a path to attain long-term stability and enhanced efficiency in perovskite solar cells.
离子迁移与各种有害现象有关,包括电流密度-电压滞后、相分离等,这些现象显著限制了钙钛矿太阳能电池的稳定性和性能,阻碍了它们向商业应用发展的进程。为应对这些挑战,我们建议将可聚合有机小分子单体N-氨基甲酰基-2-丙基戊-4-烯酰胺(Apronal)掺入钙钛矿薄膜中,通过热交联形成交联聚合物(P-Apronal)。Apronal中的羰基和氨基与浅缺陷(如未配位的Pb和碘空位)有效相互作用,导致形成具有更高结晶度和更低晶格应变的高质量薄膜。此外,P-Apronal的引入改善了能级排列,并促进了电荷载流子的提取和传输,从而实现了25.09%的最佳效率。重要的是,P-Apronal可以有效抑制I离子的迁移,并提高器件的长期稳定性。本策略为实现钙钛矿太阳能电池的长期稳定性和提高效率开辟了一条道路。