Wang Ying, Zhang Yuchen, Lv Hui, Fang Xiang, Lin Bencai, Cheng Guanggui, Yuan Ningyi, Ding Jianning
School of Materials Science and Engineering, Jiangsu Collaborative Innovation Center for Photovoltic Science and Engineering, Jiangsu Province Cultivation base for State Key Laboratory of Photovoltaic Science and Technology, Changzhou University, Changzhou 213164, China.
School of Materials Science and Engineering, Jiangsu Collaborative Innovation Center for Photovoltic Science and Engineering, Jiangsu Province Cultivation base for State Key Laboratory of Photovoltaic Science and Technology, Changzhou University, Changzhou 213164, China.
Int J Biol Macromol. 2025 Jun;311(Pt 1):143606. doi: 10.1016/j.ijbiomac.2025.143606. Epub 2025 Apr 28.
Hydrogels are one of the ideal materials for preparing new flexible sensor devices. In this work, based on the freeze-thaw cycle and Hoffmeister effect to improve the mechanical properties, a low-temperature resistant multifunctional conductive hydrogel with excellent mechanical properties, high transparency, high adhesion, high conductivity, high sensitivity, excellent sensing ability and self-healing ability was prepared by diffusing Fe and ethylene glycol (EG) in the hydrogel network via immersion method. Moreover, wearable sensors assembled from it could accurately monitor the movement of various parts of the human body, and it could accurately identify tiny strain and pressure sensing. In addition, the hydrogel had long-term stability (after 7 days at room temperature, it still maintained 88.03 % of its original weight), strong adhesion (after repeated adhesion for 3 times, the adhesion to 6 materials was more than 72 % of the original value), excellent frost resistance (not freeze under -50 °C), and good self-repairing ability (the cut hydrogel would be self-repaired after 5 min and could be stretched to more than 2 times the original length). The hydrogel's multifunctionality and high sensitivity to small strains will make it show a high application prospect in the field of precision sensing.
水凝胶是制备新型柔性传感器件的理想材料之一。在这项工作中,基于冻融循环和霍夫迈斯特效应来改善机械性能,通过浸渍法将铁和乙二醇(EG)扩散到水凝胶网络中,制备了一种具有优异机械性能、高透明度、高粘附性、高导电性、高灵敏度、出色传感能力和自愈能力的耐低温多功能导电水凝胶。此外,由其组装而成的可穿戴传感器能够准确监测人体各部位的运动,并且能够准确识别微小应变和压力传感。另外,该水凝胶具有长期稳定性(在室温下放置7天后,仍保持其原始重量的88.03%)、强粘附性(反复粘附3次后,对6种材料的粘附力超过原始值的72%)、优异的抗冻性(在-50℃下不结冰)以及良好的自愈能力(切断的水凝胶在5分钟后会自愈,并且可以拉伸至原始长度的2倍以上)。水凝胶的多功能性和对小应变的高灵敏度将使其在精密传感领域展现出很高的应用前景。