首页> 外文会议>IEEE International Solid- State Circuits Conference >17.6 Rapid and energy-efficient molecular sensing using dual mm-Wave combs in 65nm CMOS: A 220-to-320GHz spectrometer with 5.2mW radiated power and 14.6-to-19.5dB noise figure
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17.6 Rapid and energy-efficient molecular sensing using dual mm-Wave combs in 65nm CMOS: A 220-to-320GHz spectrometer with 5.2mW radiated power and 14.6-to-19.5dB noise figure

机译:17.6在65nm CMOS中使用双毫米波梳进行快速节能的分子传感:具有5.2mW辐射功率和14.6至19.5dB噪声系数的220至320GHz光谱仪

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Millimeter-wave/terahertz rotational spectroscopy offers ultra-wide-detection range of gas molecules for chemical and biomedical sensing. Therefore, wideband, energy-efficient, and fast-scanning CMOS spectrometers are in demand. Spectrometers using narrow-pulse sources and electromagnetic scattering [1] are broadband, but their resolutions do not meet the requirement (<10kHz) of the absolute specificity. Alternatively, a scheme using a single tunable tone exhibits significant trade-off between bandwidth and performance. The 245GHz spectrometer in [2] presents 4mW radiated power, but only has a 14GHz bandwidth. In [3] and [4], broader bandwidths are achieved at the expense of degraded radiated power (0.1mW) and noise figure (NF=18.4 to ∼23.5dB). In addition, given a typical 10kHz resolution and 1ms integration time, scanning a 100GHz bandwidth with a single tone takes as long as 3 hours. This paper reports a rapid, energy-efficient spectrometer architecture based on dual-frequency-comb scanning. A 220-to-320GHz CMOS spectrometer prototype based on this architecture is demonstrated with a total radiated power of 5.2mW and a NF of 14.6 to ∼19.5dB.
机译:毫米波/太赫兹旋转光谱仪为化学和生物医学传感提供了超宽检测范围的气体分子。因此,需要宽带,高能效和快速扫描的CMOS光谱仪。使用窄脉冲源和电磁散射的光谱仪[1]是宽带的,但是其分辨率不能满足绝对特异性的要求(<10kHz)。可替代地,使用单个可调音调的方案在带宽和性能之间表现出显着的权衡。文献[2]中的245GHz光谱仪具有4​​mW的辐射功率,但只有14GHz的带宽。在[3]和[4]中,以降低的辐射功率(0.1mW)和噪声系数(NF = 18.4至〜23.5dB)为代价实现了更宽的带宽。此外,在典型的10kHz分辨率和1ms积分时间的情况下,以单音扫描100GHz带宽将花费长达3个小时的时间。本文报告了一种基于双频梳状扫描的快速,节能的光谱仪架构。演示了基于此架构的220-320GHz CMOS光谱仪原型,其总辐射功率为5.2mW,NF为14.6至〜19.5dB。

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