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Stretchable and Directly Patternable Double-Layer Structure Electrodes with Complete Coverage

Title
Stretchable and Directly Patternable Double-Layer Structure Electrodes with Complete Coverage
Author(s)
Bang, JunsungAhn, JunhyukZhang, JinyuanKo, Tae HeePark, ByeonghakLee, Yong MinJung, Byung KuLee, Sang YeopOk, JehyungKim, Bong HoonKim, Tae-ilChoi, Jong-IlLee, Chi HwanOh, Soong Ju
Issued Date
2022-08
Citation
ACS Nano, v.16, no.8, pp.12134 - 12144
Type
Article
Author Keywords
direct patternablestretchable electrodecomplete coverageadhesiondouble-layer structure
Keywords
HIGH-PERFORMANCETRANSPARENTPHOTODETECTORPRESSUREARRAY
ISSN
1936-0851
Abstract
Stretchable electrodes are widely used in next generation wearable electronics. Recent studies incorporated designs that help rigid electrodes attain stretchability. However, these structures exhibited unsatisfactory charge/signal extraction efficiency because of their low areal fill factor. Additionally, they cannot be photolithographically patterned on polymer substrates because of their low adhesion, requiring additional complicated fabrication steps. We developed photolithographically patternable stretchable electrodes with complete coverage and enhanced charge-extraction efficiency. The electrodes, comprising double layers, included a chemically treated Ag nanowire mesh and Au thin film. The interfacial linker role of polyvinylpyrrolidone chemically strengthened the interfacial bonds, and the reinforced concrete structure of nanowire-embedded metal thin films enhanced the mechanical properties. Therefore, the electrodes provided superior efficiency and stability in capturing physical, electromagnetic, and electrophysiological signals while exceeding the existing stretchable electrode limits. A broad range of applications are foreseen, such as electrocardiogram sensing electrodes, strain sensors, temperature sensors, and antennas.
URI
http://hdl.handle.net/20.500.11750/17084
DOI
10.1021/acsnano.2c02664
Publisher
American Chemical Society
Related Researcher
  • 김봉훈 Kim, Bong Hoon
  • Research Interests IoT Devices; Medical Devices; 3D Materials; Nanomaterials; Self-assembly
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Appears in Collections:
Department of Robotics and Mechatronics Engineering Bonghoon Group 1. Journal Articles

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