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珀塞尔增强型X射线闪烁

Purcell-enhanced x-ray scintillation.

作者信息

Kurman Yaniv, Lahav Neta, Schuetz Roman, Shultzman Avner, Roques-Carmes Charles, Lifshits Alon, Zaken Segev, Lenkiewicz Tom, Strassberg Rotem, Be'er Orr, Bekenstein Yehonadav, Kaminer Ido

机构信息

Department of Electrical and Computer Engineering, Technion - Israel Institute of Technology, 32000 Haifa, Israel.

Solid State Institute, Technion - Israel Institute of Technology, 32000 Haifa, Israel.

出版信息

Sci Adv. 2024 Nov;10(44):eadq6325. doi: 10.1126/sciadv.adq6325. Epub 2024 Nov 1.

Abstract

Scintillation materials convert high-energy radiation to optical light through a complex multistage process. The last stage of the process is spontaneous light emission, which usually governs and limits the scintillator emission rate and light yield. For decades, scintillator research focused on developing faster-emitting materials or external photonic coatings for improving light yields. Here, we experimentally demonstrate a fundamentally different approach: enhancing the scintillation rate and yield via the Purcell effect, utilizing optical environment engineering to boost spontaneous emission. This enhancement is universally applicable to any scintillating material and dopant when the material's nanoscale geometry is engineered. We design a thin multilayer nanophotonic scintillator, demonstrating Purcell-enhanced scintillation with 50% enhancement in emission rate and 80% enhancement in light yield. The emission is robust to fabrication disorder, further highlighting its potential for x-ray applications. Our results show prospects for bridging nanophotonics and scintillator science toward reduced radiation dosage and increased resolution for high-energy particle detection.

摘要

闪烁材料通过一个复杂的多阶段过程将高能辐射转化为可见光。该过程的最后阶段是自发发光,这通常控制并限制闪烁体的发射速率和光产额。几十年来,闪烁体研究主要集中在开发发射更快的材料或外部光子涂层以提高光产额。在此,我们通过实验展示了一种根本不同的方法:利用光学环境工程来增强自发发射,通过珀塞尔效应提高闪烁速率和产额。当对材料的纳米级几何结构进行设计时,这种增强普遍适用于任何闪烁材料和掺杂剂。我们设计了一种薄的多层纳米光子闪烁体,展示了珀塞尔增强的闪烁,发射速率提高了50%,光产额提高了80%。这种发射对制造无序具有鲁棒性,进一步突出了其在X射线应用中的潜力。我们的结果显示了将纳米光子学与闪烁体科学相结合以降低辐射剂量并提高高能粒子检测分辨率的前景。

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