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Three-Dimensional Stretchable and Transparent Conductors with Controllable Strain-Distribution Based on Template-Assisted Transfer Printing. | LitMetric

Three-Dimensional Stretchable and Transparent Conductors with Controllable Strain-Distribution Based on Template-Assisted Transfer Printing.

ACS Appl Mater Interfaces

The Institute of Scientific and Industrial Research (ISIR) , Osaka University, Mihogaoka 8-1 , Ibaraki , Osaka 567-0047 , Japan.

Published: January 2019

AI Article Synopsis

  • Researchers have developed a new type of stretchable transparent conductors that overcome issues of low stretchability and complex fabrication processes found in previous designs.
  • The innovative strategy uses a combination of substrate design and a straightforward template-assisted transfer printing method to create three-dimensional conductors that are both highly stretchable and stable over time.
  • These 3D conductors exhibit excellent electrical properties, with low resistance and high transmittance, and they can maintain performance through extensive stretching, making them ideal for applications in wearable healthcare electronics.

Article Abstract

Although stretchable transparent conductors, stemmed from the strategies of both conductive composite and structural design of nonstretchable conductors, have been extensively studied, these conductors either suffer from low stretchability or require a complex fabrication process, which drastically limits their practical applications. Here, we propose a novel strategy combining the design of substrates and a simple template-assisted transfer printing process to fabricate three-dimensional (3D) transparent conductors. The strategy not only eliminates the complex and costly fabrication processes but it also endows conductors with high stretchability and long-term stability, thanks to the controllable strain distribution as well as the seamless connection between the conductor layer and the substrate. These newly designed 3D conductors achieve a low sheet resistance of 1.0 Ω/sq with a high transmittance of above 85% and remain stable without obvious resistance change during 1000 stretching-relaxation cycles until 60% strain, which are superior to most reported conductors. A large-area stretchable heater based on the 3D conductor realizes the temperature fluctuation below 10% even under a large strain, thus showing huge application prospects in the field of wearable healthcare electronics. The simple solution-processed fabrication method and high performance such as stretchability and low resistance change over a large strain range promote the practical applications of these newly designed 3D conductors.

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Source
http://dx.doi.org/10.1021/acsami.8b18670DOI Listing

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