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全无机钙钛矿纳米晶闪烁体。

All-inorganic perovskite nanocrystal scintillators.

机构信息

Department of Chemistry, National University of Singapore, Singapore, Singapore.

School of Science, China University of Geosciences, Beijing, China.

出版信息

Nature. 2018 Sep;561(7721):88-93. doi: 10.1038/s41586-018-0451-1. Epub 2018 Aug 27.

Abstract

The rising demand for radiation detection materials in many applications has led to extensive research on scintillators. The ability of a scintillator to absorb high-energy (kiloelectronvolt-scale) X-ray photons and convert the absorbed energy into low-energy visible photons is critical for applications in radiation exposure monitoring, security inspection, X-ray astronomy and medical radiography. However, conventional scintillators are generally synthesized by crystallization at a high temperature and their radioluminescence is difficult to tune across the visible spectrum. Here we describe experimental investigations of a series of all-inorganic perovskite nanocrystals comprising caesium and lead atoms and their response to X-ray irradiation. These nanocrystal scintillators exhibit strong X-ray absorption and intense radioluminescence at visible wavelengths. Unlike bulk inorganic scintillators, these perovskite nanomaterials are solution-processable at a relatively low temperature and can generate X-ray-induced emissions that are easily tunable across the visible spectrum by tailoring the anionic component of colloidal precursors during their synthesis. These features allow the fabrication of flexible and highly sensitive X-ray detectors with a detection limit of 13 nanograys per second, which is about 400 times lower than typical medical imaging doses. We show that these colour-tunable perovskite nanocrystal scintillators can provide a convenient visualization tool for X-ray radiography, as the associated image can be directly recorded by standard digital cameras. We also demonstrate their direct integration with commercial flat-panel imagers and their utility in examining electronic circuit boards under low-dose X-ray illumination.

摘要

在许多应用中,对辐射探测材料的需求不断增加,这导致了对闪烁体的广泛研究。对于在辐射暴露监测、安全检查、X 射线天文学和医学放射照相中的应用,闪烁体将高能(千电子伏特级)X 射线光子吸收并将所吸收的能量转换为低能量可见光光子的能力是至关重要的。然而,传统的闪烁体通常通过高温结晶合成,并且它们的发光很难在整个可见光谱范围内进行调谐。在这里,我们描述了一系列由铯和铅原子组成的全无机钙钛矿纳米晶体的实验研究及其对 X 射线辐照的响应。这些纳米晶闪烁体表现出对 X 射线的强吸收和在可见波长处的强烈发光。与体相无机闪烁体不同,这些钙钛矿纳米材料可以在相对较低的温度下通过溶液处理来制备,并且可以通过在其合成过程中调整胶体前体的阴离子成分来轻松地在整个可见光谱范围内调谐 X 射线诱导的发射。这些特性允许制造具有检测限为 13 纳克每秒的柔性和高灵敏度 X 射线探测器,这比典型的医学成像剂量低约 400 倍。我们表明,这些可调节颜色的钙钛矿纳米晶闪烁体可以为 X 射线放射照相提供一种方便的可视化工具,因为相关的图像可以直接由标准数码相机记录。我们还展示了它们与商用平板成像器的直接集成及其在低剂量 X 射线照射下检查电路板的实用性。

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