Zhao Weiwei, Yao Le, Shen Jiacheng, Chen Shujiao, Zhu Shujing, Chen Shu, Wang Longlu, Li Yang, Liu Shujuan, Zhao Qiang
State Key Laboratory of Flexible Electronics (LoFE) and Institute of Advanced Materials (IAM), Nanjing University of Posts & Telecommunications, 9 Wenyuan Road, Nanjing 210023, China.
College of Electronic and Optical Engineering & College of Flexible Electronics (Future Technology), Nanjing University of Posts & Telecommunications, 9 Wenyuan Road, Nanjing 210023, China.
ACS Appl Mater Interfaces. 2025 May 14;17(19):27713-27739. doi: 10.1021/acsami.5c05225. Epub 2025 May 5.
With the rapid development of flexible electronics in wearable devices, healthcare devices, and the Internet of Things (IoT), liquid metals (LMs)-based hydrogels have emerged as cutting-edge functional materials due to their high electrical conductivity, tunable mechanical properties, excellent biocompatibility, and unique self-healing properties. Through various physical or chemical methods, LMs can be integrated to form multifunctional LMs-based hydrogels, thus broadening the potential application fields. In this Review, the recent advancement in LMs-based hydrogels for flexible electronics is comprehensively and systematically reviewed from three aspects of synthesis methods, properties, and applications. For the first time, the existing innovative synthesis methods of LMs-based hydrogels are classified and summarized, including patterned LMs on/inside hydrogel substrates, LMs as conductive fillers in polymeric hydrogels, LMs as initiators in hydrogels, and LMs as cross-linkers with organic/inorganic materials. The synthesis mechanism is also stated in detail to highlight the multiple roles of LMs in adjusting the hydrogel properties. The versatile applications of LMs-based hydrogels in flexible electronics, including flexible sensors, wireless communications, electromagnetic interference (EMI) shielding, soft robot actuators, energy storage and conversion, etc., are separately described. Finally, the current challenges and future prospects of LMs-based hydrogels are proposed.
随着柔性电子技术在可穿戴设备、医疗保健设备和物联网(IoT)中的迅速发展,基于液态金属(LMs)的水凝胶因其高导电性、可调节的机械性能、优异的生物相容性和独特的自愈性能而成为前沿功能材料。通过各种物理或化学方法,液态金属可以被整合以形成多功能的基于液态金属的水凝胶,从而拓宽潜在的应用领域。在本综述中,从合成方法、性能和应用三个方面对基于液态金属的水凝胶在柔性电子领域的最新进展进行了全面系统的综述。首次对基于液态金属的水凝胶现有的创新合成方法进行了分类和总结,包括在水凝胶基质上/内部的图案化液态金属、作为聚合物水凝胶中导电填料的液态金属、作为水凝胶中引发剂的液态金属以及作为与有机/无机材料交联剂的液态金属。还详细阐述了合成机理,以突出液态金属在调节水凝胶性能方面的多重作用。分别描述了基于液态金属的水凝胶在柔性电子领域的多种应用,包括柔性传感器、无线通信电磁干扰(EMI)屏蔽、软机器人致动器、能量存储和转换等。最后,提出了基于液态金属的水凝胶当前面临的挑战和未来前景。