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◆ Nature Communications2026-02-23· Materials science

Solid-liquid interface synthesis of selective (111)-oriented Cs2AgBiBr6 perovskite crystals

Enliu Hong, Ziqing Li, Ming Deng, Limin Wu, Xiaosheng Fang

原始摘要(英文原文)· Original abstract
Achieving the preferred orientation of specific facets is crucial for regulating the anisotropic physical properties of crystal materials and optimizing the performance of semiconductor optoelectronic devices. However, the intrinsic challenges lie in precisely controlling the growth kinetics of crystal facets and suppressing defects during the spontaneous crystallization processes. Herein, we report the microdroplet interface synthesis of Cs2AgBiBr6 single crystals with controlled orientations. By selectively reducing the nucleation barrier of (111) facets via modulation of the solid-liquid interface energy, the random (100)/(110)/(111) orientations are transformed into a selective (111)-preferred orientation. Further, thermal annealing is demonstrated to effectively improve crystal quality by releasing lattice strain and promoting octahedral reordering. Both theoretical calculations and experiments validate the advantages of (111)-oriented facets with higher ionic migrate energy and lower defect density than (100) and (110) facets, which result in better endurance to moisture and light irradiation. Besides, photodetectors based on the (111) facets exhibit superior performance to (100) and (110) facets. This work highlights the crucial role of interface energy in directing crystallographic orientation, providing theoretical basis and design strategies for the precise manipulation of crystal facets. Regulating the orientation of crystal facets is always an important but challenging issue. Here, the authors report the droplet interface synthesis of Cs2AgBiBr6 single crystals and the random (100)/(110)/(111) orientations can be transformed to a selective (111)-preferred orientation.
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Solid-liquid interface synthesis of selective (111)-oriented Cs2AgBiBr6 perovskite crystals — 科研速览 Science Skim