An Eun Young, Lee Siyoung, Lee Seung Goo, Lee Eunho, Baek Jeong Ju, Shin Gyojic, Choi Kyung Ho, Cho Jeong Ho, Bae Geun Yeol
Green and Sustainable Materials R&D Department, Korea Institute of Industrial Technology, Cheonan 31056, Korea.
Department of Chemical and Biomolecular Engineering, Yonsei University, Seoul 03722, Korea.
Nanomaterials (Basel). 2021 Oct 27;11(11):2865. doi: 10.3390/nano11112865.
A new strategy is required to realize a low-cost stretchable electrode while realizing high stretchability, conductivity, and manufacturability. In this study, we fabricated a self-patterned stretchable electrode using a simple and scalable process. The stretchable electrode is composed of a bridged square-shaped (BSS) AgNW bundle mesh developed by liquid bridge evaporation and a stretchable polymer matrix patterned with a microcavity array. Owing to the BSS structure and microcavity array, which effectively concentrate the applied strain on the deformable square region of the BSS structure under tensile stretching, the stretchable electrode exhibits high stretchability with a low ΔR/R of 10.3 at a strain of 40%. Furthermore, by exploiting the self-patterning ability-attributable to the difference in the ability to form liquid bridges according to the distance between microstructures-we successfully demonstrated a stretchable AgNW bundle mesh with complex patterns without using additional patterning processes. In particular, stretchable electrodes were fabricated by spray coating and bar coating, which are widely used in industry for low-cost mass production. We believe that this study significantly contributes to the commercialization of stretchable electronics while achieving high performance and complex patterns, such as stretchable displays and electronic skin.
需要一种新策略来实现低成本的可拉伸电极,同时实现高拉伸性、导电性和可制造性。在本研究中,我们采用简单且可扩展的工艺制造了一种自图案化的可拉伸电极。该可拉伸电极由通过液桥蒸发形成的桥接方形(BSS)银纳米线束网和带有微腔阵列图案的可拉伸聚合物基质组成。由于BSS结构和微腔阵列在拉伸时能有效地将施加的应变集中在BSS结构的可变形方形区域上,该可拉伸电极在40%应变下具有10.3的低ΔR/R,展现出高拉伸性。此外,通过利用基于微结构之间距离形成液桥能力差异的自图案化能力,我们成功展示了一种无需额外图案化工艺的具有复杂图案的可拉伸银纳米线束网。特别是,通过在工业中广泛用于低成本大规模生产的喷涂和刮涂工艺制造了可拉伸电极。我们相信这项研究对可拉伸电子产品的商业化做出了重大贡献,同时实现了高性能和复杂图案,如可拉伸显示器和电子皮肤。