Yun Min Ju, Sim Yeon Hyang, Lee Dong Yoon, Cha Seung I
Energy Conversion Research Center, Electrical Materials Research Division, Korea Electrotechnology Research Institute, 12, Jeongiuil-gil, Seongsan-gu, Changwon, 51543, Korea.
Department of Electro-Functionality Materials Engineering, University of Science and Technology, 12, Jeongiuil-gil, Seongsan-gu, Changwon, 51543, Korea.
Sci Rep. 2021 Feb 17;11(1):4038. doi: 10.1038/s41598-021-83480-x.
With the rapid development of stretchable and wearable technologies, stretchable interconnection technology also demanded along it. Stretchable interconnections should have high stretchability and stable conductivity for use as an electrode. In addition, to develop to commercialization scale from research scale, a simple fabrication process that can be scaled up, and the stretchable interconnection should be able to be electrically connected to devices or modules directly. To date, printable conductor inks, liquid metals and stretchable structured interconnections have been reported for stretchable interconnections. These approaches have demonstrated high stretchability and conductivity, but in aspect of scale, it is appropriate to apply in micro-scale devices. For requirements of stretchability, conductivity and direct integration into meso- or centimeter-scale electronic devices or modules, here we introduce stretchable interconnections with a textile structure composed of metal fibers. The stretchable woven and knitted textiles show 67% strain and stable conductivity, and the cylindrical textile shows more than 700% strain with high strength. The stretchable textiles were fabricated using a weaving, knitting and braiding machine that can be used to produce textiles without any limit to length or area. These textiles exhibit high and stable conductivity even under deformation, and can be directly integrated into devices or modules by soldering. These high-performance stretchable textiles have great potential for commercial applications.
随着可拉伸和可穿戴技术的快速发展,可拉伸互连技术也随之兴起。可拉伸互连作为电极使用时应具有高拉伸性和稳定的导电性。此外,要从研究规模发展到商业化规模,需要一个可扩大规模的简单制造工艺,并且可拉伸互连应能够直接与设备或模块进行电连接。迄今为止,已报道了用于可拉伸互连的可印刷导体油墨、液态金属和可拉伸结构化互连。这些方法已证明具有高拉伸性和导电性,但在规模方面,适用于微尺度设备。针对可拉伸性、导电性以及直接集成到中尺度或厘米尺度电子设备或模块的要求,在此我们介绍一种由金属纤维组成的纺织结构的可拉伸互连。这种可拉伸的机织和针织纺织品显示出67%的应变和稳定的导电性,而圆柱形纺织品显示出超过700%的应变且具有高强度。这些可拉伸纺织品是使用可用于生产长度或面积不受任何限制的纺织品的织造、针织和编织机器制造的。即使在变形情况下,这些纺织品也表现出高且稳定的导电性,并且可以通过焊接直接集成到设备或模块中。这些高性能可拉伸纺织品具有巨大的商业应用潜力。