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Related Experiment Video

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Conformable Wearable Electrodes: From Fabrication to Electrophysiological Assessment
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Skin-Friendly Electronics for Acquiring Human Physiological Signatures.

Yujia Zhang1,2,3, Tiger H Tao1,2,3,4,5,6

  • 1State Key Laboratory of Transducer Technology, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai, 200050, China.

Advanced Materials (Deerfield Beach, Fla.)
|October 18, 2019
PubMed
Summary

New "skin-friendly" epidermal electronic devices offer strong adhesion and easy removal. These biocompatible sensors monitor health and fitness, decomposing on demand for user and environmental benefits.

Keywords:
epidermal electronicsmachine learningphysiological monitoringresilin proteinssilk proteintransient electronics

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Area of Science:

  • Biomedical Engineering
  • Materials Science
  • Wearable Technology

Background:

  • Epidermal electronic devices are crucial for real-time health and fitness monitoring.
  • Strong adhesion of current devices causes discomfort and pain during removal, especially on sensitive skin.
  • Need for advanced epidermal devices with both secure adhesion and easy, non-painful detachment.

Purpose of the Study:

  • To develop biocompatible and water-decomposable epidermal electronic devices.
  • To achieve strong adhesion and easy detachment simultaneously using a novel protein-based substrate.
  • To enable on-demand transiency and environmentally friendly device disposal.

Main Methods:

  • Fabrication of flexible, stretchable, and degradable protein-based substrates.
  • Engineering mechanical properties of a plasticized protein platform for controlled adhesion and decomposition.
  • Integration of electro- and biochemical sensing modules into the epidermal devices.
  • Utilizing artificial neural networks for analyzing physiological signals.

Main Results:

  • Development of "skin-friendly" epidermal devices with concurrent strong adhesion and easy detachment.
  • Demonstration of water-triggered, on-demand decomposition (transiency) of the protein-based substrate.
  • Successful measurement of multidimensional physiological signals in human experiments.
  • Analysis of physiological signatures using artificial neural networks.

Conclusions:

  • The innovative epidermal devices offer a user- and environmentally friendly solution for health monitoring.
  • The protein-based platform provides engineered mechanical properties for enhanced device performance and safety.
  • These advances broaden the applications of epidermal electronics in wearable health technology.