A Low-Noise Oscillator based on a Multi-Membrane CMUT for High Sensitivity Resonant Chemical Sensors

Hyunjoo Lee, K. Park, P. Cristman, O. Oralkan, M. Kupnik, B. Khuri-Yakub
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引用次数: 23

Abstract

We present 17.5-MHz and 42.7-MHz low-noise Colpitts oscillators employing capacitive micromachined ultrasonic transducers (CMUTs), each composed of a thousand resonator cells electrically connected in parallel. The massive parallelism lowers the motional impedance, and thus, reduces frequency noise and provides better matching to low-noise oscillator topologies. The 42.7-MHz oscillator achieved a phase noise of -105 dBc/Hz and -148 dBc/Hz at offset frequencies of 1 kHz and 1 MHz, respectively in air. The performance is comparable to MEMS oscillators based on resonators with high Q in vacuum. The lowest Allan deviation of the oscillator was measured to be 4.7 × 10-9 implying a mass resolution of 0.96 attogram per membrane. In addition, using the 17.5-MHz CMUT resonator, the performance of the Colpitts topology is compared to that of the amplifier based oscillator topology.
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基于多膜CMUT的高灵敏度共振化学传感器低噪声振荡器
我们提出了17.5 mhz和42.7 mhz的低噪声科尔皮茨振荡器,采用电容式微机械超声换能器(CMUTs),每个由一千个并联电连接的谐振腔组成。大量的并行性降低了运动阻抗,从而降低了频率噪声,并提供了更好的匹配低噪声振荡器拓扑结构。42.7 MHz振荡器在空气中分别在1 kHz和1 MHz的偏置频率下实现了-105 dBc/Hz和-148 dBc/Hz的相位噪声。其性能可与基于真空高Q谐振器的MEMS振荡器相媲美。振荡器的最小艾伦偏差测量为4.7 × 10-9,这意味着每膜的质量分辨率为0.96阿克。此外,使用17.5 mhz CMUT谐振器,比较了Colpitts拓扑与基于放大器的振荡器拓扑的性能。
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