State Key Laboratory of Precision Spectroscopy, East China Normal University, 200062, Shanghai, China.
Chongqing Key Laboratory of Precision Optics, Chongqing Institute of East China Normal University, 401121, Chongqing, China.
Nat Commun. 2023 Feb 25;14(1):1073. doi: 10.1038/s41467-023-36815-3.
Single-pixel cameras have recently emerged as promising alternatives to multi-pixel sensors due to reduced costs and superior durability, which are particularly attractive for mid-infrared (MIR) imaging pertinent to applications including industry inspection and biomedical diagnosis. To date, MIR single-pixel photon-sparse imaging has yet been realized, which urgently calls for high-sensitivity optical detectors and high-fidelity spatial modulators. Here, we demonstrate a MIR single-photon computational imaging with a single-element silicon detector. The underlying methodology relies on nonlinear structured detection, where encoded time-varying pump patterns are optically imprinted onto a MIR object image through sum-frequency generation. Simultaneously, the MIR radiation is spectrally translated into the visible region, thus permitting infrared single-photon upconversion detection. Then, the use of advanced algorithms of compressed sensing and deep learning allows us to reconstruct MIR images under sub-Nyquist sampling and photon-starving illumination. The presented paradigm of single-pixel upconversion imaging is featured with single-pixel simplicity, single-photon sensitivity, and room-temperature operation, which would establish a new path for sensitive imaging at longer infrared wavelengths or terahertz frequencies, where high-sensitivity photon counters and high-fidelity spatial modulators are typically hard to access.
单像素相机由于成本降低和卓越的耐用性,最近已成为多像素传感器的有前途的替代品,这对于包括工业检测和生物医学诊断在内的应用中的中红外 (MIR) 成像特别有吸引力。迄今为止,MIR 单像素光子稀疏成像尚未实现,这迫切需要高灵敏度的光学探测器和高保真度的空间调制器。在这里,我们使用单元素硅探测器演示了 MIR 单光子计算成像。该方法的基础是基于非线性结构检测,其中编码的时变泵浦图案通过和频生成光学地记录在 MIR 物体图像上。同时,MIR 辐射被光谱转换到可见光区域,从而允许进行红外单光子上转换检测。然后,使用压缩感测和深度学习的先进算法,我们可以在亚奈奎斯特采样和光子饥饿照明下重建 MIR 图像。所提出的单像素上转换成像范例的特点是单像素简单性、单光子灵敏度和室温操作,这将为在更长的红外波长或太赫兹频率下进行敏感成像开辟新途径,在这些波长或频率下,高灵敏度光子计数器和高保真度的空间调制器通常难以获得。