Ma Jingxuan, Sa Zicheng, Zhang He, Feng Jiayun, Wen Jiayue, Wang Shang, Tian Yanhong
National Key Laboratory of Precision Welding & Joining of Materials and Structures, Harbin Institute of Technology, Harbin, 150001, China.
Department of Mechanical Engineering, The University of Hong Kong, Hong Kong, 999077, China.
Adv Sci (Weinh). 2024 Sep;11(34):e2402818. doi: 10.1002/advs.202402818. Epub 2024 Jun 19.
Stretchable electrodes based on liquid metals (LM) are widely used in human-machine interfacing, wearable bioelectronics, and other emerging technologies. However, realizing the high-precision patterning and mechanical stability remains challenging due to the poor wettability of LM. Herein, a method is reported to fabricate LM-based multilayer solid-liquid electrodes (m-SLE) utilizing electrohydrodynamic (EHD) printed confinement template. In these electrodes, LM self-assembled onto these high-resolution templates, assisted by selective wetting on the electrodeposited Cu layer. This study shows that a m-SLE composed of PDMS/Ag/Cu/EGaIn exhibits line width of ≈20 µm, stretchability of ≈100%, mechanical stability ≈10 000 times (stretch/relaxation cycles), and recyclability. The multi-layer structure of m-SLE enables the adjustability of strain sensing, in which the strain-sensitive Ag part can be used for non-distributed detection in human health monitoring and the strain-insensitive EGaIn part can be used as interconnects. In addition, this study demonstrates that near field communication (NFC) devices and multilayer displays integrated by m-SLEs exhibit stable wireless signal transmission capability and stretchability, suggesting its applicability in creating highly-integrated, large-scale commercial, and recyclable wearable electronics.
基于液态金属(LM)的可拉伸电极广泛应用于人机交互、可穿戴生物电子学及其他新兴技术领域。然而,由于液态金属润湿性较差,实现高精度图案化和机械稳定性仍具有挑战性。在此,报道了一种利用电流体动力学(EHD)打印限制模板制造基于液态金属的多层固液电极(m-SLE)的方法。在这些电极中,液态金属在电沉积铜层上的选择性润湿辅助下自组装到这些高分辨率模板上。本研究表明,由聚二甲基硅氧烷/银/铜/镓铟合金组成的m-SLE线宽约为20微米,拉伸率约为100%,机械稳定性约为10000次(拉伸/松弛循环),且具有可回收性。m-SLE的多层结构实现了应变传感的可调性,其中应变敏感的银部分可用于人体健康监测中的非分布式检测,应变不敏感的镓铟合金部分可作为互连。此外,本研究表明,由m-SLE集成的近场通信(NFC)设备和多层显示器具有稳定的无线信号传输能力和拉伸性,表明其在创建高度集成、大规模商业和可回收可穿戴电子产品方面的适用性。