太赫兹辐射
激光线宽
光学
压缩传感
材料科学
光电子学
灵敏度(控制系统)
折射率
可扩展性
光子学
医学影像学
计算机科学
太赫兹光谱与技术
二进制数
物理
微波成像
图像传感器
栅栏
超短脉冲
空间频率
领域(数学)
穿透深度
影像学
迭代重建
光谱成像
图像质量
无损检测
作者
Zhanqiang Xue,Guizhen Xu,Junliang Chen,Junxing Fan,Hongyang Xing,Ye Zhou,Longqing Cong
标识
DOI:10.29026/oea.2026.250211
摘要
Conventional terahertz (THz) single-pixel imaging relies on a sequential process involving compressed sensing, which requires a spatial modulator and is often time-intensive. Here, we propose a new THz single-pixel imaging scheme operating in a parallelized fashion with a pixelated metasurface, demonstrated within a standard THz time-domain spectroscopy system. This approach encodes spatial information through multiple narrow linewidth resonances based on bound states in the continuum (BIC) physics, and the BIC-enabled pixelated metasurface facilitates the near-field distributed sensing through local field enhancement. We validate this integrated imaging and sensing capability using a 2×2 metasurface array in a proof-of-concept experiment, with scalability to larger arrays. The approach achieves 100% accuracy in binary imaging reconstruction from a single THz pulse and enables refractive index sensing with a sensitivity higher than 14.39 GHz/RIU. Leveraging the intrinsic penetration capability of THz radiation, this technique offers significant promise for next-generation noninvasive applications such as security inspection and defect detection in semiconductor chips and pharmaceutical products.
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