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Simple and ultrafast resonance frequency and dissipation shift measurements using a fixed frequency drive

机译:使用固定频率驱动器进行简单,超快的谐振频率和耗散漂移测量

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摘要

A new method for determination of resonance frequency and dissipation of a mechanical oscillator is presented. Analytical expressions derived using the Butterworth-Van Dyke equivalent electrical circuit allow the determination of resonance frequency and dissipation directly from each impedance datapoint acquired at a fixed amplitude and frequency of drive, with no need for numerical fitting or measurement dead time unlike the conventional impedance or ring-down analysis methods. This enables an ultrahigh time resolution and superior noise performance with relatively simple instrumentation. Quantitative validations were carried out successfully against the impedance analysis method for inertial and viscous loading experiments on a 14.3 MHz quartz crystal resonator (QCR). Resonance frequency shifts associated with the transient processes of quick needle touches on a thiol self-assembled-monolayer functionalised QCR in liquid were measured with a time resolution of 112 mu s, which is nearly two orders of magnitude better than the fastest reported quartz crystal microbalance. This simple and fast fixed frequency drive (FFD) based method for determination of resonance frequency and dissipation is potentially more easily multiplexable and implementable on a single silicon chip delivering economies of scale.
机译:提出了一种确定机械振荡器谐振频率和耗散的新方法。使用Butterworth-Van Dyke等效电路得出的解析表达式可以直接从在固定振幅和频率下获得的每个阻抗数据点确定谐振频率和耗散,而无需像常规阻抗或阻抗那样进行数值拟合或测量死区时间衰落分析方法。这样就可以通过相对简单的仪器实现超高时间分辨率和出色的噪声性能。针对在14.3 MHz石英晶体谐振器(QCR)上进行惯性和粘性载荷实验的阻抗分析方法,成功进行了定量验证。测量与液体中硫醇自组装单层功能化QCR上的快速针头触摸的瞬态过程相关的共振频率偏移,其时间分辨率为112μs,这比报道的最快的石英晶体微量天平好了近两个数量级。 。这种基于简单,快速的固定频率驱动(FFD)的确定谐振频率和耗散的方法可能更容易在实现规模经济的单个硅芯片上进行复用和实现。

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