材料科学
钙钛矿(结构)
化学工程
路易斯酸
结晶
相(物质)
基础(拓扑)
Crystal(编程语言)
动力学
结晶学
化学
有机化学
催化作用
计算机科学
数学分析
工程类
物理
量子力学
程序设计语言
数学
作者
Chenzhe Xu,Zheng Zhang,Suicai Zhang,Haonan Si,Shuangfei Ma,Wenqiang Fan,Zhaozhao Xiong,Qingliang Liao,Abdul Sattar,Zhuo Kang,Yue Zhang
标识
DOI:10.1002/adfm.202009425
摘要
Abstract The Lewis acid–base adduct approach has been widely used to form high‐crystalline perovskite films, but the complicated crystallization pathway and underlying film formation mechanism are still ambiguous. Here, the detailed crystallization process of perovskites manipulated by Lewis base additives has been revealed by in situ X‐ray scattering measurements. Through monitoring the film formation process, two distinct crystal growth stages have been definitely recognized: i) an intermediate phase‐dominated stage; and ii) a phase transformation stage from intermediates to crystalline perovskite phase. Incorporating Lewis base additives significantly prolongs the duration of stage 1 and induces a postponed phase transformation pathway, which could be responsible for retardant crystallization kinetics. Based on a series of experimental results and theoretical calculations, it is indicated that the manipulation of perovskite crystallization pathway is a result of the modulated molecular interactions between Lewis base additives and solution precursors. Owing to the retardant crystallization kinetics, enhanced‐quality perovskite films with reduced defect density and improved optoelectronic properties, as well as optimized photovoltaic performance have been demonstrated. This work provides in‐depth understanding with respect to perovskite crystallization pathway modulated by Lewis base additives and perceptive guidelines for precise regulation of crystallization kinetics of perovskite film toward high performance.
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