Synergetic Effect of Porous Elastomer and Percolation of Carbon Nanotube Filler toward High Performance Capacitive Pressure Sensors

Jungrak Choi, Donguk Kwon, Kyuyoung Kim, Jaeho Park, Dionisio Del Orbe, Jimin Gu, Junseong Ahn, Incheol Cho, Yongrok Jeong, Yongsuk Oh, Inkyu Park

Research output: Contribution to journalArticlepeer-review

169 Scopus citations

Abstract

Wearable pressure sensors have been attracting great attention for a variety of practical applications, including electronic skin, smart textiles, and healthcare devices. However, it is still challenging to realize wearable pressure sensors with sufficient sensitivity and low hysteresis under small mechanical stimuli. Herein, we introduce simple, cost-effective, and sensitive capacitive pressure sensor based on porous Ecoflex-multiwalled carbon nanotube composite (PEMC) structures, which leads to enhancing the sensitivity (6.42 and 1.72 kPa-1 in a range of 0-2 and 2-10 kPa, respectively) due to a synergetic effect of the porous elastomer and percolation of carbon nanotube fillers. The PEMC structure shows excellent mechanical deformability and compliance for an effective integration with practical wearable devices. Also, the PEMC-based pressure sensor shows not only the long-term stability, low-hysteresis, and fast response under dynamic loading but also the high robustness against temperature and humidity changes. Finally, we demonstrate a prosthetic robot finger integrated with a PEMC-based pressure sensor and an actuator as well as a healthcare wristband capable of continuously monitoring blood pressure and heart rate.

Original languageEnglish
Pages (from-to)1698-1706
Number of pages9
JournalACS Applied Materials and Interfaces
Volume12
Issue number1
DOIs
StatePublished - 8 Jan 2020

Keywords

  • capacitive pressure sensor
  • carbon nanotube
  • healthcare monitoring
  • human-robot interface
  • microporous elastomer
  • wearable sensor

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