4.8 Article

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

期刊

ADVANCED MATERIALS
卷 33, 期 48, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202103320

关键词

conductive foams; e-skins; flexible electronics; porous nanocomposites; pressure sensors; pulse waveforms

资金

  1. US Office of Naval Research [N00014-20-1-2112, N00014-18-1-2323]
  2. US Army Research Office [W911NF-19-2-0333]
  3. Temple Foundation Endowed Teaching Fellowship in Engineering [1]
  4. Philip C. and Linda L. Lewis Foundation Graduate Fellowship in Mechanical Engineering
  5. Warren A. and Alice L. Meyer Endowed Scholarship in Engineering at the University of Texas at Austin

向作者/读者索取更多资源

Researchers have developed a new hybrid-response pressure sensor with increased sensitivity, achieved by combining electrically conductive porous nanocomposites with an ultrathin dielectric layer. Through simplified analytical models, they have successfully gained a fundamental understanding of the sensor and predicted optimal CNT doping.
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(-1) within 0-1 kPa to 0.43 kPa(-1) 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.

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