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A resonant cantilever sensor for monitoring airborne nanoparticles

机译:用于监测空气纳米颗粒的共振悬臂传感器

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In this paper, a silicon resonant cantilever sensor is used for monitoring airborne nanoparticles (NPs) by detecting the resonant frequency shift that is directly induced by an additional NPs mass deposited on it. A piezoelectric stack actuator and a self-sensing technique using a piezoresistive strain gauge are involved in the sensor system in order to actuate and detect the oscillation of cantilever sensor, respectively. The dielectrophoresis (DEP) method is employed for trapping the airborne NPs in a stable carbon aerosol assessment. A thermal-induced frequency shift is also investigated with the purpose of observing the limitation imposed by thermal effects on the minimum detectable NPs mass. The proposed sensor reveals a mass sensitivity of 8.33 Hz/ng, a fundamental resonant frequency of 43.92 kHz, a quality factor of 1230, and a temperature coefficient of the resonant frequency (TCf) of −28.6 ppm/°C. The results demonstrate a possibility of using this resonant cantilever in mobile airborne sensor applications.
机译:在本文中,硅谐振悬臂传感器用于通过检测通过沉积在其上的额外NPS质量诱导的谐振频率偏移来监测空气纳米颗粒(NPS)。传感器系统涉及使用压阻应变计的压电叠致动器和自感应技术,以便分别致动和检测悬臂传感器的振荡。使用介电泳(DEP)方法用于将空气中的NPS捕获在稳定的碳气溶胶评估中。还研究了热诱导的频移,目的是观察通过热效应对最小可检测的NPS质量施加的限制。所提出的传感器显示出8.33Hz / ng的质量敏感性,基本的共振频率为43.92 kHz,质量因数为1230,以及&#x2212的谐振频率的温度系数(tc f ) ; 28.6 ppm /° c。结果表明,在移动空中传感器应用中使用这种共振悬臂的可能性。

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