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Subterahertz and Terahertz Sensing of Biological Objects and Chemical Agents

机译:生物物体和化学制剂的太赫兹和太赫兹感测

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The applications of the terahertz (THz) technology include detection, sensing, and imaging of biological objects and chemical agents. The traditional approaches to sensing, and imaging of biological objects and chemical agents have been based on measuring THz absorption or reflection from biological tissues and compiling spectroscopic signatures of different chemicals. An extreme sensitivity of THz absorption and reflection to the water content allows for distinguishing cancer and healthy cells. Chemical changes, changes in polarizability or density or conformation might be detected as well. One of the limitations of the traditional THz absorption/reflection studies is related to a wavelength limited resolution. A more recent THz technology based on plasmonics and metamaterials has the resolution determined by the plasmonic detector feature size, i.e. down to the nanometer scale. Such detectors operating in a resonant regime are expected to have a large sensitivity at the plasma frequencies to even small changes of the dielectric properties at the detector surfaces. While remaining high-risk and high payoff technology, THz biological and chemical sensing is poised for breakthrough developments due to the recent progress in THz electronics including emerging nanoscale Si CMOS based sub-THz ICs.
机译:太赫兹(THz)技术的应用包括对生物物体和化学制剂的检测,感测和成像。对生物物体和化学试剂进行感测和成像的传统方法是基于测量THz从生物组织吸收或反射并汇编不同化学物质的光谱特征。太赫兹吸收和反射对水分的极度敏感性可以区分癌症和健康细胞。也可能会检测到化学变化,极化率或密度或构象的变化。传统的THz吸收/反射研究的局限性之一与波长受限的分辨率有关。基于等离子体和超材料的更新的太赫兹技术具有由等离子体检测器特征尺寸确定的分辨率,即低至纳米级。期望在谐振状态下操作的这种检测器在等离子体频率处具有大的灵敏度,即使在检测器表面处的介电特性的变化很小。在保持高风险和高回报技术的同时,由于太赫兹电子技术的最新进展,包括新兴的基于纳米Si CMOS的次太赫兹IC,太赫兹生物和化学传感技术有望取得突破性发展。

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