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基于高孔隙率纳米复合材料的混合响应实现的宽压力范围内高灵敏度电容式压力传感器

Highly Sensitive Capacitive Pressure Sensors over a Wide Pressure Range Enabled by the Hybrid Responses of a Highly Porous Nanocomposite.

作者信息

Ha Kyoung-Ho, Zhang Weiyi, Jang Hongwoo, Kang Seungmin, Wang Liu, Tan Philip, Hwang Hochul, Lu Nanshu

机构信息

Department of Mechanical Engineering, University of Texas at Austin, Austin, TX, 78712, USA.

Department of Aerospace Engineering and Engineering Mechanics, University of Texas at Austin, Austin, TX, 78712, USA.

出版信息

Adv Mater. 2021 Dec;33(48):e2103320. doi: 10.1002/adma.202103320. Epub 2021 Sep 27.

DOI:10.1002/adma.202103320
PMID:34569100
Abstract

Past research aimed at increasing the sensitivity of capacitive pressure sensors has mostly focused on developing dielectric layers with surface/porous structures or higher dielectric constants. However, such strategies have only been effective in improving sensitivities at low pressure ranges (e.g., up to 3 kPa). To overcome this well-known obstacle, herein, a flexible hybrid-response pressure sensor (HRPS) composed of an electrically conductive porous nanocomposite (PNC) laminated with an ultrathin dielectric layer is devised. Using a nickel foam template, the PNC is fabricated with carbon nanotubes (CNTs)-doped Ecoflex to be 86% porous and electrically conductive. The PNC exhibits hybrid piezoresistive and piezocapacitive responses, resulting in significantly enhanced sensitivities (i.e., more than 400%) over wide pressure ranges, from 3.13 kPa within 0-1 kPa to 0.43 kPa within 30-50 kPa. The effect of the hybrid responses is differentiated from the effect of porosity or high dielectric constants by comparing the HRPS with its purely piezocapacitive counterparts. Fundamental understanding of the HRPS and the prediction of optimal CNT doping are achieved through simplified analytical models. The HRPS is able to measure pressures from as subtle as the temporal arterial pulse to as large as footsteps.

摘要

过去旨在提高电容式压力传感器灵敏度的研究大多集中在开发具有表面/多孔结构或更高介电常数的介电层上。然而,这些策略仅在低压范围(例如,高达3 kPa)内提高灵敏度方面有效。为了克服这一众所周知的障碍,本文设计了一种由导电多孔纳米复合材料(PNC)与超薄介电层层压而成的柔性混合响应压力传感器(HRPS)。使用泡沫镍模板,用掺杂碳纳米管(CNT)的Ecoflex制造PNC,使其具有86%的孔隙率且导电。PNC表现出混合压阻和压容响应,在宽压力范围内(从0至1 kPa内的3.13 kPa到30至50 kPa内的0.43 kPa)灵敏度显著提高(即超过400%)。通过将HRPS与其纯压容对应物进行比较,区分了混合响应的效果与孔隙率或高介电常数的效果。通过简化的分析模型实现了对HRPS的基本理解和对最佳CNT掺杂的预测。HRPS能够测量从微妙的动脉脉搏到巨大的脚步声等各种压力。

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