闪烁体
材料科学
光子晶体
光电子学
制作
光子学
光子
光学
可扩展性
灵敏度(控制系统)
联轴节(管道)
亚布朗维特
单层
等离子体子
Crystal(编程语言)
干扰(通信)
光子晶体光纤
纳米技术
谐振器
作者
Yao Zhu,Chentao Li,Sijun Cao,Jun’an Lai,Peng He,Qiang Wang,Xiong Xiao,Kaifeng Liu,Yuchong Ding,Peng Feng
标识
DOI:10.29026/oea.2027.260038
摘要
High-density inorganic scintillators play a pivotal role in X-ray imaging owing to their strong stopping power and efficient emission in the visible regime. However, their practical performance is fundamentally constrained by refractive-index mismatch, which traps a large fraction of generated photons through total internal reflection. Although photonic crystal structures offer a promising route for enhancing light extraction, scalable large-area integration onto scintillator substrates remains a significant challenge. Here, we propose a scalable self-assembly-based fabrication strategy for large-area photonic crystal scintillators, enabling the formation of a 25-mm-scale continuous PS-nanosphere PhC monolayer with locally verified HCP packing on the scintillator surface. The resulting photonic crystal facilitates momentum compensation via Bragg diffraction, thereby coupling confined guided wave modes to free-space radiation. Under X-ray excitation, this diffraction-mediated extraction mechanism experimentally yields a 4.64-fold enhancement in light output and a 13 dB improvement in signal-to-noise ratio for radiographic imaging. The measurable gain in detection sensitivity suggests this scalable fabrication strategy is a promising approach for high-performance X-ray detection in photon-starved applications, including low-dose medical diagnostics and security screening.
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