材料科学
卤化物
钙钛矿(结构)
碱金属
化学物理
离子
格子(音乐)
密度泛函理论
晶体缺陷
磁滞
无机化学
计算化学
结晶学
凝聚态物理
化学
有机化学
物理
声学
作者
Jie Cao,Shuxia Tao,P. A. Bobbert,Ching‐Ping Wong,Ni Zhao
标识
DOI:10.1002/adma.201707350
摘要
Abstract Recent success in achieving highly stable Rb‐containing organolead halide perovskites has indicated the possibility of incorporating small monovalent cations, which cannot fit in the lead‐halide cage with an appropriate tolerance factor, into the perovskite lattice while maintaining a pure stable “black” phase. In this study, through a combined experimental and theoretical investigation by density functional theory (DFT) calculations on the incorporation of extrinsic alkali cations (Rb + , K + , Na + , and Li + ) in perovskite materials, the size‐dependent interstitial occupancy of these cations in the perovskite lattice is unambiguously revealed. Interestingly, DFT calculations predict the increased ion migration barriers in the lattice after the interstitial occupancy. To verify this prediction, ion migration behavior is characterized through hysteresis analysis of solar cells, electrical poling, temperature‐dependent conductivity, and time‐dependent photoluminescence measurements. The results collectively point to the suppression of ion migration after lattice interstitial occupancy by extrinsic alkali cations. The findings of this study provide new material design principles to manipulate the structural and ionic properties of multication perovskite materials.
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