Multifunctional Liquid Metal-Based Nanocomposite Hydrogel with High Conductivity, Antibacterial and Adhesive Properties for Wearable Electronics

材料科学 胶粘剂 纳米复合材料 数码产品 电导率 可穿戴技术 复合材料 金属 纳米技术 可穿戴计算机 化学 冶金 电气工程 计算机科学 工程类 图层(电子) 嵌入式系统 物理化学
作者
Fang Liu,Zehua Chen,Zidan Zhang,Li Tang,Jianxin Tang,Bailin Dai
出处
期刊:ACS applied nano materials [American Chemical Society]
卷期号:8 (15): 7616-7629 被引量:9
标识
DOI:10.1021/acsanm.5c00336
摘要

The emergence of eutectic gallium–indium (EGaIn) liquid metal (LM) alloys as a soft multifunctional nanofiller presents an opportunity for the fabrication of hydrogel-based strain sensors with advanced multifunctional properties. However, developing a facile and efficient approach to synthesize nanocomposite conductive hydrogels that exhibit excellent stretchability, conductivity, self-adhesion, and antibacterial properties remains a significant challenge. In this study, we introduce a semi-interpenetrating network design strategy to synthesize a high-performance nanocomposite hydrogel [liquid metal/silver nanowires/sodium lignosulfonate/polyacrylamide] [LM/AgNWs/SL/pAM] (LASM). This hydrogel consists of a single polyacrylamide (pAM) network combined with a semi-interpenetrating network formed by silver nanowires (AgNWs) and LM nanoparticles. The semi-interpenetrating network is primarily cross-linked through hydrogen bonds, electrostatic interactions, and metal coordination. The resulting conductive hydrogels demonstrate superior stretchable properties (tensile stress: 120.28 kPa; tensile strain: 373.15%), impressive conductivity (0.64 S/m), high antifatigue performance, self-adhesive characteristics (Ti: 25.40 kPa; Al: 20.66 kPa), and notable antibacterial activity, all achieved through the construction of a hybrid chemical and physical cross-linking network. Leveraging these attributes, the nanocomposite hydrogel was assembled into a flexible sensor capable of distinguishing an extensive range of human movements, from large scale motions to subtle joint bending with remarkable stability and sensitivity. Furthermore, the LASM strain sensor can function as an adaptable writing keyboard that accurately recognizes English letters (“a”, “p”, “e”, “L,” and “HUT”) in real time when written on its surface. This multifunctional 3D nanocomposite conductive hydrogel holds great potential for applications in wearable electronics.
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