成核
化学物理
卤化物
结晶
钙钛矿(结构)
材料科学
晶界
中尺度气象学
格子(音乐)
Crystal(编程语言)
纳米技术
结晶学
单晶
半导体
晶体生长
晶体缺陷
金属
离子
溶剂化
离解(化学)
量子点
分子动力学
晶体结构
晶系
作者
Jingyi Sun,Xinyi Shao,Fu Wei,Borui Lei,Xiaonan Wang,Yang Gui,Jingjing Zhou,Yixin Luo,Tianqi Deng,Rui Wang,Deren Yang,Jingjing Xue
标识
DOI:10.1038/s41467-026-72042-2
摘要
The synthesis of high-quality single crystals is essential for revealing intrinsic structure-property relationships, as they provide an ideal model system free from grain boundaries and other extrinsic defects, enabling precise studies of electronic, optical, and charge-transport properties. In metal halide perovskites, an emerging family of semiconductors that have rapidly become a focal point of optoelectronic materials research, single crystal studies provide direct access to intrinsic processes such as defect formation, ion migration, and interfacial behavior. However, producing large, high-quality perovskite single crystals remains challenging because their multicomponent precursor solutions sustain dynamic solvation and coordination equilibria. The coexistence of fast ion dynamics and unstable coordination often drives uncontrolled multi-nucleation and disordered aggregation, making the nucleation stage a critical determinant of final crystal quality. Here, we introduce a general nucleation-control framework that regulates transient precursor species into mesoscale clusters via reversible, non-covalent interactions. Such weak and dynamic interactions provide soft confinement at the pre-nucleation stage, suppress random aggregation, promote selective nucleation, and permit ordered lattice formation without permanent additive incorporation. Implemented through a polymer-templated strategy, the approach enables the formation of centimetre-scale perovskite single crystals within hours and is broadly applicable across various perovskite compositions, demonstrating its universality.
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