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用于间接伽马射线探测的块状有机-无机甲脒卤化铅钙钛矿单晶

Bulk Organic-Inorganic Methylammonium Lead Halide Perovskite Single Crystals for Indirect Gamma Ray Detection.

机构信息

Department of Nuclear Science and Engineering , Nanjing University of Aeronautics and Astronautics , Nanjing 211106 , China.

Northwest Institute of Nuclear Technology , Xi'an 710024 , China.

出版信息

ACS Appl Mater Interfaces. 2019 Dec 18;11(50):47485-47490. doi: 10.1021/acsami.9b10367. Epub 2019 Dec 5.

Abstract

Scintillators that convert ionization radiation photons to UV-visible photons have attracted extraordinary attention. Traditional scintillators are associated with a vacuum photomultiplier tube that faces strict constraints of fragility, magnetic fields, and operated voltage, or coupled to a silicon photomultiplier (SiPM) with optical silicone grease. Here, we report a high-performance radiation detector with an indirect photon-to-photon conversion radiation detection model based on perovskite single crystals (SCs), where perovskite SCs have been directly integrated into the window of SiPM by using the solution growth method at low temperature. Tunable X (γ)-ray excited light emission in the range of 414 to 600 nm is obtained with different concentrations of Br doping, which greatly matches the response wavelength of SiPM. Small Br-doped CHNHPbBrCl SCs exhibit high transmittance and weak self-absorption, resulting in improved scintillation light emissions. Moreover, we have successfully collected a Cs source gamma-ray pulse height spectrum with the SiPM readout. The MAPbBrCl scintillator exhibits a decay time of 0.14 ± 0.02 ns and a light yield of 18 000 photons/MeV with an energy resolution of 10.5 ± 0.4% at 662 keV. The results indicate that the CHNHPbBrCl perovskite SCs could enable the next generation of low-cost, fast, and fine-energy resolution scintillators.

摘要

将电离辐射光子转换为紫外-可见光子的闪烁体引起了极大关注。传统的闪烁体与真空光电倍增管相关联,而真空光电倍增管面临着易碎、磁场和工作电压的严格限制,或者与硅光电倍增管(SiPM)耦合,需要使用光学硅脂。在这里,我们报告了一种基于钙钛矿单晶(SCs)的高性能辐射探测器,具有间接光子-光子转换辐射检测模型,其中钙钛矿 SC 已经通过低温溶液生长法直接集成到 SiPM 的窗口中。通过不同浓度的 Br 掺杂,可以获得可调谐的 X(γ)射线激发光发射,范围为 414 至 600nm,与 SiPM 的响应波长非常匹配。掺杂 Br 的小 CHNHPbBrCl SC 具有高透过率和弱自吸收,从而提高了闪烁光发射。此外,我们已经成功使用 SiPM 读出收集了 Cs 源伽马射线脉冲高度谱。在 662keV 时,MAPbBrCl 闪烁体的衰减时间为 0.14 ± 0.02ns,光产率为 18000 个光子/MeV,能量分辨率为 10.5 ± 0.4%。结果表明,CHNHPbBrCl 钙钛矿 SC 可以实现下一代低成本、快速和精细能量分辨率闪烁体。

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