Chip-less wireless electronic skins by remote epitaxial freestanding compound semiconductors
- Authors
- Kim, Yeongin; Suh, Jun Min; Shin, Jiho; Liu, Yunpeng; Yeon, Hanwool; Qiao, Kuan; Kum, Hyun S.; Kim, Chansoo; Lee, Han Eol; Choi, Chanyeol; Kim, Hyunseok; Lee, Doyoon; Lee, Jaeyong; Kang, Ji-Hoon; Park, Bo-In; Kang, Sungsu; Kim, Jihoon; Kim, Sungkyu; Perozek, Joshua A.; Wang, Kejia; Park, Yongmo; Kishen, Kumar; Kong, Lingping; Palacios, Tom?s; Park, Jungwon; Park, Min-Chul; Kim, Hyung jun; Lee, Yun Seog; Lee, Kyusang; Bae, Sang-Hoon; Kong, Wei; Han, Jiyeon; Kim, Jeehwan
- Issue Date
- 2022-08
- Publisher
- AMER ASSOC ADVANCEMENT SCIENCE
- Citation
- SCIENCE, v.377, no.6608, pp.859 - 869
- Abstract
- 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 chipless 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.
- Keywords
- KLEBSIELLA-PNEUMONIAE NITROGENASE; STEADY-STATE KINETICS; STRUCTURAL EVIDENCE; N-2 REDUCTION; MOFE-PROTEIN; MECHANISM; BINDING; REACTIVITY; COMPLEXES; FIXATION
- ISSN
- 0036-8075
- URI
- https://pubs.kist.re.kr/handle/201004/76638
- DOI
- 10.1126/science.abn7325
- Appears in Collections:
- KIST Article > 2022
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