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Highly sensitive integrated flexible tactile sensors with piezoresistive Ge2Sb2Te5 thin films

  • Zhiguang Wang
  • , Cunzheng Dong
  • , Xinjun Wang
  • , Menghui Li
  • , Tianxiang Nan
  • , Xianfeng Liang
  • , Huaihao Chen
  • , Yuyi Wei
  • , Haomiao Zhou
  • , Mohsen Zaeimbashi
  • , Syd Cash
  • , Nian Xiang Sun
  • Northeastern University
  • Massachusetts General Hospital
  • China Jiliang University

Research output: Contribution to journalArticlepeer-review

37 Scopus citations

Abstract

Flexible tactile sensor has been extensively investigated as a key component for emerging electronics applications such as robotics, wearable devices, computer hardware, and security systems. Tactile sensors based on various one-dimensional materials have been widely explored. However, precise control of the direction and distribution of these nanomaterials remains a great challenge, and it has been difficult to scale down the device. Here, we introduce highly sensitive integrated flexible tactile sensors based on uniform phase-change Ge2Sb2Te5 (GST) thin films that can scale device size down, at least, to micrometer range. Significant piezoresistive effect has been observed in GST-based sensors, showing a giant gauge factor of 338. A proof of concept 5 × 5 sensor array functioning as a touch panel has been demonstrated. Also, the flexible GST tactile sensor has been utilized for monitoring of radial artery pulse. In addition to the well-known tunable electrical and optical properties, the piezoresistive GST films provide a versatile platform for the integration of sensing, recording, and displaying functions.

Original languageEnglish
Article number17
Journalnpj Flexible Electronics
Volume2
Issue number1
DOIs
StatePublished - 1 Dec 2018

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