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Ghost spintronic THz-emitter-array microscope

机译:Ghost Spintronic THz - 发射器阵列显微镜

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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-cm1). A modification of the technology called terahertz near-field microscopy brings improvements in resolution and speed for biological and medical imaging and nondestructive materials testing. Terahertz waves lie between the microwave and infra-red regions of the electromagnetic spectrum. The improved "ghost-imaging" procedure was developed by researchers in China, Singapore and the USA, led by Li-Guo Zhu at the China Academy of Engineering Physics. In ghost imaging the illuminating radiation is split into one beam that interacts with the object being studied and another beam that does not. The so-called ghost image of the object is then constructed by computational comparison of the different behaviour of the two beams. The innovation depends on gaining enhanced control of the structure of the terahertz radiation using a system called a spintronic terahertz emitter array.
机译:太赫兹(Thz)波在非破坏性测试,生物渗和癌症成像中显示出巨大的潜力。尽管最近在THz波浪近场探测/光圈中取得了进展,使得能够扫描物体表面的光栅扫描,但高效,非丙烷,非侵入性的深层的下式成像技术仍然具有挑战性。在这里,我们使用可重新配置的旋转旋转速度THz展示THz近场显微镜检查基于计算鬼成像原理的发射器阵列(Stea)。通过用可重新配置的Stea照亮对象,然后计算相关性,我们可以通过深源分辨率重建对象的图像。通过应用外部磁场,在线实现了THz波的偏振旋转,使得融合图像对比度极化。飞行时间(TOF)测量相干THz脉冲的测量进一步使物体在不同的距离或深度处能够解决。演示的幽灵旋转旋转THz-emiter - array显微镜(Ghosteam)是一种用于THz近场成像的局部新型成像工具,打开范式转换机会宽频率频率的无模型无标记生物仿真范围为0.1至30至30至30吨(即3.3-1000-cm1)。一种改性称为太赫兹近场显微镜的技术为生物和医学成像和无损材料测试的分辨率和速度提高了改进。太赫兹波在电磁谱的微波和红外区域之间。改进的“Ghost-emaging”程序是由中国,新加坡和美国的研究人员开发的,由李国朱在中国工程物理学学院领导。在Ghost成像中,照明辐射被分成一个与所研究的物体相互作用的一个光束和另一个梁。然后通过两个波束的不同行为的计算比较来构造对象的所谓的Ghost图像。创新取决于使用称为Spintronic Terahtz发射器阵列的系统获得Terahertz辐射结构的增强控制。

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