Chen Si-Chao, Feng Zheng, Li Jiang, Tan Wei, Du Liang-Hui, Cai Jianwang, Ma Yuncan, He Kang, Ding Haifeng, Zhai Zhao-Hui, Li Ze-Ren, Qiu Cheng-Wei, Zhang Xi-Cheng, Zhu Li-Guo
Institute of Fluid Physics, China Academy of Engineering Physics, Mianyang, 621900 Sichuan China.
Department of Optics and Optical Engineering, University of Science and Technology of China, Hefei, 230026 Anhui China.
Light Sci Appl. 2020 Jun 8;9:99. doi: 10.1038/s41377-020-0338-4. eCollection 2020.
Terahertz (THz) waves show great potential in nondestructive testing, biodetection and cancer imaging. Despite recent progress in THz wave near-field probes/apertures enabling raster scanning of an object's surface, an efficient, nonscanning, noninvasive, deep subdiffraction imaging technique remains challenging. Here, we demonstrate THz near-field microscopy using a reconfigurable spintronic THz emitter array (STEA) based on the computational ghost imaging principle. By illuminating an object with the reconfigurable STEA followed by computing the correlation, we can reconstruct an image of the object with deep subdiffraction resolution. By applying an external magnetic field, in-line polarization rotation of the THz wave is realized, making the fused image contrast polarization-free. Time-of-flight (TOF) measurements of coherent THz pulses further enable objects at different distances or depths to be resolved. The demonstrated ghost spintronic THz-emitter-array microscope (GHOSTEAM) is a radically novel imaging tool for THz near-field imaging, opening paradigm-shifting opportunities for nonintrusive label-free bioimaging in a broadband frequency range from 0.1 to 30 THz (namely, 3.3-1000 cm).
太赫兹(THz)波在无损检测、生物检测和癌症成像方面展现出巨大潜力。尽管近年来太赫兹波近场探头/孔径在实现对物体表面的光栅扫描方面取得了进展,但一种高效、非扫描、非侵入性的深亚衍射成像技术仍然具有挑战性。在此,我们基于计算鬼成像原理,利用可重构自旋电子太赫兹发射器阵列(STEA)演示了太赫兹近场显微镜技术。通过用可重构STEA照射物体,然后计算相关性,我们能够以深亚衍射分辨率重建物体图像。通过施加外部磁场,实现了太赫兹波的共线偏振旋转,使融合图像对比度无偏振。相干太赫兹脉冲的飞行时间(TOF)测量进一步能够分辨不同距离或深度的物体。所演示的鬼自旋电子太赫兹发射器阵列显微镜(GHOSTEAM)是一种用于太赫兹近场成像的全新成像工具,为在0.1至30太赫兹(即3.3 - 1000厘米)的宽带频率范围内进行非侵入性无标记生物成像带来了范式转变的机遇。