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Asymmetric resonance response analysis of a thermally excited silicon microcantilever for mass-sensitive nanoparticle detection

机译:用于质量敏感纳米粒子检测的热激发硅微悬臂梁的不对称共振响应分析

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摘要

The asymmetric resonance responses of a thermally actuated silicon microcantilever of a portable, cantilever-based nanoparticle detector (Cantor) is analysed. For airborne nanoparticle concentration measurements, the cantilever is excited in its first in-plane bending mode by an integrated p-type heating actuator. The mass-sensitive nanoparticle (NP) detection is based on the resonance frequency (f_0) shifting due to the deposition of NPs. A homemade phase-locked loop (PLL) circuit is developed for tracking of f_0. For deflection sensing the cantilever contains an integrated piezo-resistive Wheatstone bridge (WB). A new fitting function based on the Fano resonance is proposed for analysing the asymmetric resonance curves including a method for calculating the quality factor Q from the fitting parameters. To obtain a better understanding, we introduce an electrical equivalent circuit diagram (ECD) comprising a series resonant circuit (SRC) for the cantilever resonator and voltage sources for the parasitics, which enables us to simulate the asymmetric resonance response and discuss the possible causes. Furthermore, we compare the frequency response of the on-chip thermal excitation with an external excitation using an in-plane piezo actuator revealing parasitic heating of the WB as the origin of the asymmetry. Moreover, we are able to model the phase component of the sensor output using the ECD. Knowing and understanding the phase response is crucial to the design of the PLL and thus the next generation of Cantor.
机译:分析了便携式,基于悬臂的纳米粒子检测器(Cantor)的热驱动硅微悬臂的不对称共振响应。对于空气中的纳米颗粒浓度测量,悬臂通过集成的p型加热执行器以其第一个面内弯曲模式被激发。质量敏感纳米粒子(NP)检测基于由于NP沉积而引起的共振频率(f_0)偏移。开发了一种自制的锁相环(PLL)电路来跟踪f_0。为了进行偏转检测,悬臂包含一个集成的压阻惠斯通电桥(WB)。提出了一种基于法诺共振的新型拟合函数,用于分析非对称共振曲线,包括一种根据拟合参数计算品质因数Q的方法。为了获得更好的理解,我们引入了等效电路图(ECD),其中包括用于悬臂谐振器的串联谐振电路(SRC)和用于寄生电容的电压源,这使我们能够模拟不对称谐振响应并讨论可能的原因。此外,我们使用片内压电致动器将片上热激励的频率响应与外部激励进行了比较,揭示了WB的寄生加热作为不对称性的根源。此外,我们能够使用ECD对传感器输出的相位分量进行建模。了解和理解相位响应对于PLL的设计至关重要,因此对于下一代Cantor设计也至关重要。

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  • 来源
    《Smart sensors, actuators, and MEMS VIII》|2017年|102460K.1-102460K.7|共7页
  • 会议地点 Barcelona(ES)
  • 作者单位

    Institute of Semiconductor Technology (IHT), Technische Universitaet Braunschweig, Hans-Sommer-Straße 66, D-38106 Braunschweig, Germany,Laboratory of Emerging Nanometrology (LENA), Technische Universitaet Braunschweig, Hans-Sommer-Straße 66, D-38106 Braunschweig, Germany;

    Institute of Semiconductor Technology (IHT), Technische Universitaet Braunschweig, Hans-Sommer-Straße 66, D-38106 Braunschweig, Germany,Laboratory of Emerging Nanometrology (LENA), Technische Universitaet Braunschweig, Hans-Sommer-Straße 66, D-38106 Braunschweig, Germany;

    Institute of Semiconductor Technology (IHT), Technische Universitaet Braunschweig, Hans-Sommer-Straße 66, D-38106 Braunschweig, Germany,Laboratory of Emerging Nanometrology (LENA), Technische Universitaet Braunschweig, Hans-Sommer-Straße 66, D-38106 Braunschweig, Germany;

    Institute of Semiconductor Technology (IHT), Technische Universitaet Braunschweig, Hans-Sommer-Straße 66, D-38106 Braunschweig, Germany,Laboratory of Emerging Nanometrology (LENA), Technische Universitaet Braunschweig, Hans-Sommer-Straße 66, D-38106 Braunschweig, Germany;

    Institute of Semiconductor Technology (IHT), Technische Universitaet Braunschweig, Hans-Sommer-Straße 66, D-38106 Braunschweig, Germany,Laboratory of Emerging Nanometrology (LENA), Technische Universitaet Braunschweig, Hans-Sommer-Straße 66, D-38106 Braunschweig, Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    airborne nanoparticles; electrothermal cantilever; asymmetric resonance; electromagnetic coupling; thermal coupling; Fano resonance; resonator;

    机译:空气传播的纳米颗粒;电热悬臂不对称共振电磁耦合热耦合;发声共振;共振器;

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