通过具有完全集成反馈的单片谐振悬臂式传感器,在水中实现了非常高的q因子

Y. Li, C. Vancura, C. Hagleitner, J. Lichtenberg, O. Brand, H. Baltes
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引用次数: 32

摘要

我们提出了一种新颖的、单片的、质量敏感的悬臂式液体测量传感器,它通过闭环驱动实现了高质量因子(q因子)。悬臂梁是反馈系统中的频率决定元件,其共振频率是表面质量变化的函数。由于强阻尼,基于悬臂的传感器通常在液体中受到低质量因子的影响,而我们的设备使用内部反馈回路来提高q因子。这允许在221khz的共振频率下将q因子从23增加到19000。悬臂梁由洛伦兹力驱动,振荡由压阻式mos晶体管检测。带幅度控制的全差分反馈电路与悬臂梁集成在同一芯片上。由于高q因子和由此产生的频率稳定性,即使很小的频率(和质量)变化也可以通过这个完全集成的系统精确测量。因此,主动,外部驱动或读出仪器,如用于光学检测的激光器,是不需要的。该传感器是生物分子杂交等液体生物传感应用的优秀候选者,并说明了集成电路用于谐振传感器的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Very high Q-factor in water achieved by monolithic, resonant cantilever sensor with fully integrated feedback
We present a novel, monolithic, mass-sensitive cantilever sensor for measurements in liquids, which achieves a high quality factor (Q-factor) by closed-loop actuation. The cantilever is the frequency-determining element in the feedback system, its resonance frequency being a function of the mass-change on the surface. While cantilever-based sensors generally suffer from low quality factors in liquids due to the strong damping, our device uses an internal feedback loop circuitry to enhance the Q-factor. This allows to increase Q-factor from 23 to 19,000 at a resonance frequency of 221 kHz. The cantilever is electromagnetically actuated by Lorentz force while the oscillation is detected by piezoresistive MOS-transistors. A fully differential feedback circuitry with amplitude control is integrated together with the cantilever on the same chip. Thanks to the high Q-factor and the resulting frequency stability, even small frequency (and mass) changes can be precisely measured by this fully integrated system. Therefore, active, external actuation or readout instrumentation, such as a laser for optical detection, is not required. The sensor is an excellent candidate for biosensing applications in liquids such as biomolecule hybridization and illustrates the advantage of integrated circuitry for resonant sensors.
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