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Chip-less wireless electronic skins by remote epitaxial freestanding compound semiconductors.

Yeongin KimJun Min SuhJiho ShinYunpeng LiuHanwool YeonKuan QiaoHyun S KumChansoo KimHan Eol LeeChanyeol ChoiHyunseok KimDoyoon LeeJaeyong LeeJi-Hoon KangBo-In ParkSungsu KangJihoon KimSungkyu KimJoshua A PerozekKejia WangYongmo ParkKumar KishenLingping KongTomás PalaciosJungwon ParkMin-Chul ParkHyung-Jun KimYun Seog LeeKyusang LeeSang-Hoon BaeWei KongJiyeon HanJeehwan Kim
Published in: Science (New York, N.Y.) (2022)
Recent advances in flexible and stretchable electronics have led to a surge of electronic skin (e-skin)-based health monitoring platforms. Conventional wireless e-skins rely on rigid integrated circuit chips that compromise the overall flexibility and consume considerable power. Chip-less wireless e-skins based on inductor-capacitor resonators are limited to mechanical sensors with low sensitivities. We report a chip-less wireless e-skin based on surface acoustic wave sensors made of freestanding ultrathin single-crystalline piezoelectric gallium nitride membranes. Surface acoustic wave-based e-skin offers highly sensitive, low-power, and long-term sensing of strain, ultraviolet light, and ion concentrations in sweat. We demonstrate weeklong monitoring of pulse. These results present routes to inexpensive and versatile low-power, high-sensitivity platforms for wireless health monitoring devices.
Keyphrases
  • low cost
  • soft tissue
  • wound healing
  • healthcare
  • public health
  • high throughput
  • circulating tumor cells
  • mental health
  • health information
  • blood pressure
  • living cells
  • molecularly imprinted