Department of Electrical and Computer Engineering, University of Utah, Salt Lake City, UT 84112, USA.
Sensors (Basel). 2019 Sep 13;19(18):3954. doi: 10.3390/s19183954.
We present the design, fabrication, and response of a polymer-based Laterally Amplified Chemo-Mechanical (LACM) humidity sensor based on mechanical leveraging and parametric amplification. The device consists of a sense cantilever asymmetrically patterned with a polymer and flanked by two stationary electrodes on the sides. When exposed to a humidity change, the polymer swells after absorbing the analyte and causes the central cantilever to bend laterally towards one side, causing a change in the measured capacitance. The device features an intrinsic gain due to parametric amplification resulting in an enhanced signal-to-noise ratio (SNR). Eleven-fold magnification in sensor response was observed via voltage biasing of the side electrodes without the use of conventional electronic amplifiers. The sensor showed a repeatable and recoverable capacitance change of 11% when exposed to a change in relative humidity from 25-85%. The dynamic characterization of the device also revealed a response time of ~1 s and demonstrated a competitive response with respect to a commercially available reference chip.
我们提出了一种基于机械杠杆和参数放大的聚合物横向扩增化学机械(LACM)湿度传感器的设计、制造和响应。该器件由一个不对称地带有聚合物图案的感测悬臂和两侧的两个固定电极组成。当暴露在湿度变化中时,聚合物在吸收分析物后膨胀,导致中央悬臂向一侧横向弯曲,导致测量电容发生变化。该器件具有固有增益,由于参数放大导致信噪比(SNR)得到增强。通过对侧电极施加偏置电压,无需使用传统的电子放大器,即可观察到传感器响应的 11 倍放大。当相对湿度从 25%变化到 85%时,传感器表现出 11%的可重复和可恢复电容变化。该器件的动态特性还揭示了约 1 s 的响应时间,并表现出与市售参考芯片相当的响应速度。