材料科学
发光
灵活性(工程)
磷光
机械化学
纳米技术
猝灭(荧光)
研磨
密度泛函理论
卤素
卤化物
工作(物理)
玻璃化
配位复合体
化学物理
过渡金属
纳米晶
混合动力系统
相变
混合材料
玻璃化转变
光子学
制作
光电子学
科技与社会
分子动力学
兴奋剂
作者
Zhenwei Guo,Daming Feng,Peng Yu,Hancheng Zhu,Ningbo Gong,Fang Guo
摘要
ABSTRACT Achieving controllable vitrification in organic‐inorganic metal halides (OIMHs) without luminescence quenching remains a challenge due to rigid structural constraints. Herein, we exploit the structural flexibility inherent in 0D Zn(II) hybrids to develop a mechanochemical strategy for coordination‐engineered long‐afterglow materials. By simply modulating liquid‐assisted grinding (LAG) agents, we achieve precise interconversion between halide‐coordinated [ZnX 4 ] 2− and coordination‐type [ZnNX 3 ] 2− geometries. Crucially, this flexible coordination environment facilitates a crystal‐to‐glass transition ( T g = 51.1°C –65.1°C) while preserving luminescent integrity. The resulting materials exhibit tunable room‐temperature phosphorescence (3.6–11.7 ms), with ( IMP )ZnCl 3 showing a persistent yellow afterglow. Density functional theory (DFT) calculations reveal that halogen substitution and coordination geometry synergistically regulate charge‐transfer processes. This work establishes a structure‐flexibility‐luminescence relationship, enabling dynamic anti‐counterfeiting systems based on time‐resolved optical logic.
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