Yang Jiyou, Yan Yin, Huang Lingzhi, Ma Mingguo, Li Mingfei, Peng Feng, Huan Weiwei, Bian Jing
Beijing Key Laboratory of Lignocellulosic Chemistry, Beijing Forestry University, Beijing 100083, China.
Engineering Research Center of Forestry Biomass Materials and Energy, Ministry of Education, Beijing Forestry University, Beijing 100083, China.
ACS Nano. 2025 Jan 21;19(2):2171-2184. doi: 10.1021/acsnano.4c11127. Epub 2025 Jan 10.
Conductive eutectogels have emerged as candidates for constructing functional flexible electronics as they are free from the constraints posed by inherent defects associated with solvents and feeble network structures. Nevertheless, developing a facile, environmentally friendly, and rapid polymerization strategy for the construction of conductive eutectogels with integrated multifunctionality is still immensely challenging. Herein, a conductive eutectogel is fabricated through a one-step dialdehyde xylan (DAX)/liquid metal (LM)-initiated polymerization of a deep eutectic solvent. DAX acts as a stabilizer for the preparation of LM nanodroplets and plays a crucial role in facilitating ultrafast gelation (less than 2 min) by virtue of its reducing dialdehyde groups. Notably, this fabrication strategy obviates the use of toxic chemical initiators and cross-linkers. The resultant eutectogels exhibit extremely high stretchability (2860%), desirable self-healing ability, high conductivity (0.72 S m), biocompatibility, excellent environmental stability, and exceptional responsiveness to tensile strain (GF = 4.08) and temperature (TCR = 5.35% K). Benefiting from these integrated features, the conductive eutectogels serve as multifunctional flexible sensors for human motion recognition and temperature monitoring. Furthermore, the eutectogel serves as a pliable electrode in the assembly of a triboelectric nanogenerator (TENG), designed to harvest mechanical energy, convert it into stable electrical outputs, and enable self-powered sensing. This study offers an approach to fabricating multifunctional integrated conductive eutectogels, making it a step closer to the development of intelligent flexible electronics.
导电低共熔凝胶已成为构建功能性柔性电子产品的候选材料,因为它们不受与溶剂相关的固有缺陷和脆弱网络结构的限制。然而,开发一种简便、环保且快速的聚合策略来构建具有集成多功能性的导电低共熔凝胶仍然极具挑战性。在此,通过一步法利用二醛木聚糖(DAX)/液态金属(LM)引发深共晶溶剂的聚合制备了一种导电低共熔凝胶。DAX作为制备LM纳米液滴的稳定剂,凭借其还原二醛基团在促进超快凝胶化(不到2分钟)方面发挥关键作用。值得注意的是,这种制备策略避免了使用有毒化学引发剂和交联剂。所得的低共熔凝胶表现出极高的拉伸性(2860%)、理想的自愈能力、高导电性(0.72 S m)、生物相容性、出色的环境稳定性以及对拉伸应变(GF = 4.08)和温度(TCR = 5.35% K)的卓越响应性。受益于这些集成特性,导电低共熔凝胶可作为用于人体运动识别和温度监测的多功能柔性传感器。此外,该低共熔凝胶在摩擦纳米发电机(TENG)的组装中用作柔韧电极,旨在收集机械能,将其转换为稳定的电输出,并实现自供电传感。这项研究提供了一种制备多功能集成导电低共熔凝胶的方法,使其朝着智能柔性电子产品的发展又迈进了一步。