Huang Hongfei, Sun Lijie, Zhang Luzhi, Zhang Yalin, Zhang Youwei, Zhao Shunan, Gu Shijia, Sun Wei, You Zhengwei
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Institute of Functional Materials, College of Materials Science and Engineering, Research Base of Textile Materials for Flexible Electronics and Biomedical Applications (China Textile Engineering Society), Shanghai Engineering Research Center of Nano-Biomaterials and Regenerative Medicine, Donghua University, 2999 North Renmin Road, Shanghai, 201620, P. R. China.
Northern Night Vision Technology (Nanjing) Research Institute Co., Ltd., 2 Kangping Street, Jiangning, Nanjing, 211100, P. R. China.
Small. 2024 Aug;20(33):e2400912. doi: 10.1002/smll.202400912. Epub 2024 Mar 26.
Gels show great promise for applications in wearable electronics, biomedical devices, and energy storage systems due to their exceptional stretchability and adjustable electrical conductivity. However, the challenge lies in integrating multiple functions like elasticity, instantaneous self-healing, and a wide operating temperature range into a single gel. To address this issue, a hybrid hydrogen bonding strategy to construct gel with these desirable properties is proposed. The intricate network of hybrid strong weak hydrogen bonds within the polymer matrix enables these ionohydrogel to exhibit remarkable instantaneous self-healing, stretching up to five times their original length within seconds. Leveraging these properties, the incorporation of ionic liquids, water, and zinc salts into hybrid hydrogen bond crosslinked network enables conductivity and redox reaction, making it a versatile ionic skin for real-time monitoring of human movements and respiratory. Moreover, the ionohydrogel can be used as electrolyte in the assembly of a zinc-ion battery, ensuring a reliable power supply for wearable electronics, even in extreme conditions (-20 °C and extreme deformations). This ionohydrogel electrolyte simplifies the diverse structural requirements of gels to meet the needs of various electronic applications, offering a new approach for multi-functional electronics.
由于其出色的拉伸性和可调节的导电性,凝胶在可穿戴电子设备、生物医学设备和能量存储系统中的应用前景广阔。然而,挑战在于将弹性、即时自修复和宽工作温度范围等多种功能集成到单一凝胶中。为了解决这个问题,提出了一种混合氢键策略来构建具有这些理想特性的凝胶。聚合物基质内复杂的混合强-弱氢键网络使这些离子水凝胶能够表现出显著的即时自修复能力,在几秒钟内可拉伸至其原始长度的五倍。利用这些特性,将离子液体、水和锌盐掺入混合氢键交联网络中可实现导电性和氧化还原反应,使其成为用于实时监测人体运动和呼吸的多功能离子皮肤。此外,离子水凝胶可在锌离子电池的组装中用作电解质,即使在极端条件下(-20°C和极端变形)也能确保为可穿戴电子设备提供可靠的电源。这种离子水凝胶电解质简化了凝胶的各种结构要求,以满足各种电子应用的需求,为多功能电子设备提供了一种新方法。