Dimethylamine Copper(I) Halide Single Crystals: Structure, Physical Properties, and Scintillation Performance.
Zhenzhong WangYiping DuChao WangLin MaChen LiTaifeng LinJiawen XiaoZhengguang YanPublished in: Inorganic chemistry (2024)
Hybrid copper(I) halides have garnered a significant amount of attention as potential substitutes in luminescence and scintillation applications. Herein, we report the discovery and crystal growth of new zero-dimensional compounds, (C 2 H 8 N) 3 Cu 2 I 5 and (C 2 H 8 N) 4 Cu 2 Br 6 . The bromide and iodide have a triclinic structure with space group P 1̅ and an orthorhombic structure with space group Pnma , respectively. (C 2 H 8 N) 3 Cu 2 I 5 exhibits cyan emission peaking at 504 nm with a photoluminescence quantum yield (PLQY) of 34.79%, while (C 2 H 8 N) 4 Cu 2 Br 6 shows yellowish-green emission peaking at 537 nm with a PLQY of 38.45%. The temperature-dependent photoluminescence data of both compounds were fitted to theoretical models, revealing that nonradiative intermediate states significantly affect thermal quenching and antiquenching. Electron-phonon interactions, the origin of emission line width broadening and peak shifting, were also investigated via fittings. The scintillation properties of (C 2 H 8 N) 3 Cu 2 I 5 were evaluated, and an X-ray imaging device was successfully fabricated using (C 2 H 8 N) 3 Cu 2 I 5 . This work demonstrates the potentiality of copper halides in lighting and X-ray imaging applications.
Keyphrases
- high resolution
- aqueous solution
- quantum dots
- energy transfer
- metal organic framework
- photodynamic therapy
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- molecular dynamics
- computed tomography
- working memory
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- deep learning
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- dual energy
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- fluorescence imaging