化学
卤化物
甲脒
溴
热稳定性
相(物质)
X射线光电子能谱
化学稳定性
无机化学
六角相
钙钛矿(结构)
化学物理
化学工程
物理化学
结晶学
有机化学
工程类
作者
Diana K. LaFollette,Juanita Hidalgo,Omar Allam,Jonghee Yang,Austin Shoemaker,Ruipeng Li,Barry Lai,Benjamin J. Lawrie,Sergei V. Kalinin,Carlo A. R. Perini,Mahshid Ahmadi,Seung Soon Jang,Juan‐Pablo Correa‐Baena
摘要
Mixed-cation and mixed-halide lead halide perovskites show great potential for their application in photovoltaics. Many of the high-performance compositions are made of cesium, formamidinium, lead, iodine, and bromine. However, incorporating bromine in iodine-rich compositions and its effects on the thermal stability of the perovskite structure has not been thoroughly studied. In this work, we study how replacing iodine with bromine in the state-of-the-art Cs0.17FA0.83PbI3 perovskite composition leads to different dynamics in the phase transformations as a function of temperature. Through a combination of structural characterization, cathodoluminescence mapping, X-ray photoelectron spectroscopy, and first-principles calculations, we reveal that the incorporation of bromine reduces the thermodynamic phase stability of the films and shifts the products of phase transformations. Our results suggest that bromine-driven vacancy formation during high temperature exposure leads to irreversible transformations into PbI2, whereas materials with only iodine go through transformations into hexagonal polytypes, such as the 4H-FAPbI3 phase. This work sheds light on the structural impacts of adding bromine on thermodynamic phase stability and provides new insights into the importance of understanding the complexity of phase transformations and secondary phases in mixed-cation and mixed-halide systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI