放射发光
材料科学
闪烁体
钙钛矿(结构)
光致发光
量子产额
发光
吸收(声学)
纳米晶
荧光
X射线光电子能谱
光电子学
纳米技术
光学
产量(工程)
量子效率
闪烁
荧光寿命成像显微镜
光谱学
辐照
辐射
卤化物
纳米材料
沉积(地质)
分子
作者
Yumeng Wang,Beiping Liu,Yingming Liu,Xi Chen,Xi Chen,Quan Wen,Eyu Wang,Bi Du,Zheng Han,Guo‐Hua Zhong,Chunlei Yang,Ming Chen
标识
DOI:10.1021/acsami.5c17410
摘要
Perovskite nanocrystals (PNCs) are emerging as promising scintillator materials owing to their high photoluminescence quantum yield (PLQY) and substantial X-ray absorption coefficient, among other superior properties. Nevertheless, their solid-state films encounter challenges such as limited environmental stability and nonuniform deposition over large areas. In contrast, liquid scintillators present advantages including superior radiation hardness, environmental stability, morphological flexibility, and cost-effective scalability, positioning them as a viable alternative. However, a significant limitation remains: PNCs demonstrate markedly reduced scintillation efficiency in solution. To address this issue, we propose an organic-inorganic hybridization strategy. The surface hybridization of metal halide perovskite CsPbX3 (X: Cl, Br, I) nanocrystals (NCs) with the organic molecule b-PBD results in a new generation of efficient and low-cost liquid scintillators. This hybrid system substantially enhances the X-ray radioluminescence quantum yield, achieving a light yield that represents an 18.59-fold increase over that of pristine CsPbBr3 solutions. The composite exhibited remarkable stability, retaining high luminescence intensity after high-dose X-ray irradiation and maintaining robust fluorescence intensity with stable emission peaks following prolonged ambient exposure. X-ray photoelectron spectroscopy (XPS) and density-functional theory (DFT) analyses confirmed N-Pb bond formation, revealing an enhancement mechanism driven by X-ray-induced directional electron transfer from the organic molecule to PNCs. We have further demonstrated a CsPbBr3/b-PBD liquid X-ray imager showing a high spatial resolution of 4.9 lp/mm. This strategy demonstrates universal enhancement across CsPbX3 variants and lead-based PNCs (e.g., Mn: CsPbCl3, Ni: CsPbBr3), facilitating low-dose radiation detection for fundamental science and diverse imaging applications.
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