化学
卤化物
发光
碘化物
三苯基氧化膦
磷化氢
氧化膦
氧化物
光化学
金属
无机化学
配位复合体
金属卤化物
螯合作用
荧光粉
串联
混合材料
光伏
激发态
铜
锌
镧系元素
光致发光
阳离子聚合
质子化
蒸发
高分子化学
三苯基膦
反离子
激子
纳米技术
结晶学
作者
Xinyu Hu,Meifeng Jiang,Rui Wu,Chunhua Luo,Hui Peng,Hechun Lin
标识
DOI:10.1021/acs.inorgchem.5c04881
摘要
Eco-friendly metal halides have emerged as promising luminescent materials due to their tunable optoelectronic properties and scalable processability. Herein, we present a novel family of phosphine oxide-metal chelated cuprous iodide hybrids (POCI), where phosphine oxide-chelated Group I/II metal cations serve as counterions to engineer diverse crystalline architectures. By employing trimorpholinophosphine oxide (TMPO) as the ligand, eight new compounds with the general formula [TMPO]2M1–2·xH2O[Cu2I4] were synthesized through a controlled slow evaporation method. The compounds display a rich variety of structural architectures where differences in the cationic coordination frameworks significantly influence their luminescent properties. The approach was extended to tricyclohexylphosphine oxide (TCPO) and triphenylphosphine oxide (TPPO), yielding [TCPO]8Na2[Cu5I7] and [TPPO]3Mg·2H2O·C3H6O[Cu4I6] with distinct copper clusters. The distinct emission behaviors observed in these compounds can be ascribed to different excited-state mechanisms, including self-trapped exciton (STE) emission, metal-to-ligand charge transfer/halide-to-ligand charge transfer (MLCT/HLCT), and cluster-centered (CC) excited states. Remarkably, these materials can be prepared via scalable mechanochemical synthesis and exhibit exceptional thermal stability, enabling their direct incorporation into hot-melt adhesives. The resulting materials process into flexible films and 3D-printing architectures with spatially controlled emission, establishing a platform for sustainable, high-performance phosphors compatible with industrial manufacturing.
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