A highly sensitive stretchable strain sensor based on multi-functionalized fabric for respiration monitoring and identification

  • Zekun Liu
  • , Zhenhong Li
  • , Heng Zhai
  • , Lu Jin
  • , Kaili Chen
  • , Yangpeiqi Yi
  • , Yuan Gao
  • , Lulu Xu
  • , Yan Zheng
  • , Sirui Yao
  • , Zhangchi Liu
  • , Gang Li
  • , Qingwen Song
  • , Pengfei Yue
  • , Shengquan Xie
  • , Yi Li
  • , Zijian Zheng

Research output: Contribution to journalArticlepeer-review

91 Scopus citations

Abstract

Wearable strain sensors have generated considerable recent research interest due to their huge potential in the real-time detection of human body deformation. State-of-the-art strain sensors are normally fabricated through conductive networks with a single sensing element, which always faces the challenge of either limited stretchability or inferior quality in sensitivity. In this work, we report a highly sensitive strain sensor based on a multi-functionalized fabric through carbonization and polymer-assisted copper deposition. The sensor shows high sensitivity (Gauge factor ∼ 3557.6 in the strain range from 0 to 48%), and outstanding stretchability up to the strain of 300%, which is capable of detecting different types of deformation of the human body. By integrating the high-performance sensor with a deep learning network, we demonstrate a high-accuracy respiration monitoring and emergency alarm system, showing the enormous application potential of the sensor in personal and public healthcare.

Original languageEnglish
Article number130869
JournalChemical Engineering Journal
Volume426
DOIs
StatePublished - 15 Dec 2021
Externally publishedYes

Keywords

  • Copper deposition
  • Fiber functionalization
  • Sensitivity enhancement
  • Strain sensor
  • Wearable electronics

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