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Updated: Jan 8, 2026

Author Spotlight: Experimental Approaches for the Synthesis of Low-Valent Metal-Organic Frameworks from Multitopic Phosphine Linkers
Published on: May 12, 2023
Phosphine Oxide-Metal Chelated Cuprous Iodide Hybrids with Rich Structural Architectures and Tunable Emission
Xinyu Hu1, Meifeng Jiang1, Rui Wu1
1Key Laboratory of Polar Materials and Devices, Ministry of Education, Department of Electronics, East China Normal University, Dongchuan Road 500, Shanghai 200241, P. R. China.
Abstract:
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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