卤化物
解耦(概率)
材料科学
纳米技术
结晶
晶体生长
金属
闪烁体
光电子学
金属有机骨架
等离子体子
Crystal(编程语言)
单晶
金属卤化物
化学
宽带
组合化学
光化学
定制
产量(工程)
有机合成
晶体结构
限制
作者
Zhi Lin,Xue‐Fei He,Guo‐Yang Chen,Bao‐Ling Tang,Ming‐Chang Wang,Ran Xu,Jia‐Jia Li,Jia‐Jie Liu,Xiao‐Ying Huang,Jin Chen,Xing‐Hui Qi,Zhi‐Guo Xia,Ke‐Zhao Du
摘要
ABSTRACT Organic‐inorganic hybrid metal halides (OIMHs) have garnered great attention for optoelectronics applications. However, the synthesis of OIMHs has been largely confined to the use of pre‐synthesized, commercial organic cations, severely limiting structural diversity and functional exploration. Herein, we present a groundbreaking in situ synthetic paradigm that concurrently executes the Menshutkin reaction and crystal growth in a single step. This one‐pot strategy seamlessly couples the on‐site custom quaternization of organic precursors with the crystallization of metal halide frameworks (such as Mn/Zn/Sb halides). By decoupling the synthesis from commercial cation sources, this method provides unparalleled freedom to incorporate a vast array of tailored cations, including those with long‐chain, multi‐aryl, and sophisticated geometric motifs (e.g., boat, chair, wing, bowl, and cyclic architectures). The power of this approach is exemplified by a novel Mn‐based OIMH, Py‐2 ([B(3‐Br‐PyCH 2 )Ph] 3 [MnBr 4 ] 2 ·2Br), which acts as an exceptional X‐ray scintillator with a high light yield of 60,000 photons/MeV—2.4 times that of commercial LuAG:Ce. A flexible scintillator screen fabricated from Py‐2 further demonstrates a high spatial resolution of 12.77 lp mm − 1 , enabling high‐resolution X‐ray imaging. This work establishes a transformative in situ crystallization platform that opens a new dimension for the bespoke design of functional hybrid materials.
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