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Terahertz Plasmonic Technology

机译:太赫兹等离子体技术

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The terahertz (THz) technology has found applications ranging from astronomical science and earth observation to compact radars, non-destructive testing, chemical analysis, explosive detection, moisture content determination, coating thickness control, film uniformity determination, structural integrity testing wireless covert communications, medical applications (including skin cancer detection), imaging, and concealed weapons detection. Beyond 5G Wi-Fi and Internet of Things (IoT) are the expected killer applications of the THz technology. Plasmonic TeraFETs such as Si CMOS with feature sizes down to 3 nm could enable a dramatic expansion of all these applications. At the FET channel sizes below 100 nm, the physics of the electron transport changes from the collision dominated to the ballistic or quasi-ballistic transport. In the ballistic regime, the electron inertia and the waves of the electron density (plasma waves) determine the high frequency response that extends into the THz range of frequencies. The rectification and instabilities of the plasma waves support a new generation of THz and sub-THz plasmonic devices. The plasmonic electronics technology has a potential become a dominant THz electronics sensing technology when the plasmonic THz sources join the compact, efficient, and fast plasmonic TeraFET THz detectors already demonstrated and being commercialized.
机译:Terahertz(Thz)技术已经发现,从天文科学和地球观测到紧凑型雷达,无损检测,化学分析,爆炸性检测,含水量测定,涂层厚度控制,薄膜均匀性测定,结构完整性测试无线封面通信的应用,医疗应用(包括皮肤癌检测),成像和隐藏武器检测。超过5G Wi-Fi和物联网(IoT)是THZ技术的预期杀手应用。具有特征尺寸下降至3 nm的Si CMO等等离子体TERAFET可以实现所有这些应用的急剧扩展。在低于100nm的FET通道尺寸下,电子传输的物理从主导地碰撞到弹道或准弹道传输的碰撞。在弹道状态下,电子惯性和电子密度的波浪(等离子体波)确定延伸到频率范围内的高频响应。等离子体波的整流和稳定性支持新一代的THz和亚THz等离子体装置。当PrasmOnic THz源加入已经演示并被商业化时,等离子体电子技术有潜力成为主导THz电子传感技术。

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