材料科学
电子皮肤
数码产品
导电体
纳米技术
柔性电子器件
电容感应
胶粘剂
热传导
粘附
离子键合
电阻抗
自愈水凝胶
电导率
可穿戴技术
相(物质)
联轴节(管道)
智能材料
相变
摩擦电效应
电解质
模数
神经形态工程学
分层(地质)
光电子学
电容耦合
混合动力系统
可穿戴计算机
电子材料
电阻率和电导率
复合材料
电子系统
作者
Meili Xia,Yongju Gao,Ju Gao,Dingxin Yin,Ruibo Tian,Wenjing Guo,Pengmin Liu,Fuqin Wu,Duxia Cao,Hao Zhang,Yuan Li,Songfang Zhao,Jong-Hyun Ahn
标识
DOI:10.1016/j.nanoms.2025.12.009
摘要
Natural material-based conductive hydrogels are promising candidates for wearable electronics due to their excellent biocompatibility, high softness, and stable adhesion. However, it remains challenging to integrate high environmental tolerance, low interfacial impedance, high ionic conductivity, and switchable modulus and adhesion into a single platform for practical applications. Herein, we propose a material and structure concept of temperature-mediated multiple dynamic interactions and ion-electron hybrid conduction to fabricate high-performance multifunctional biogels with desired features. Skin temperature-mediated phase transition of gelatin and reversible dissociation-association of dynamic interactions allow the biogels to possess a high self-healing efficiency (95%) and reversible adhesion strength (44.96 kPa) with a switching ratio of 8.72. Ion-electron hybrid conduction facilitates the capacitive coupling process of ionic and electronic current, resulting in low interfacial impedance (56.63/29.68 k Ω at 10/100 Hz) and high electrical conductivity (ionic conductivity: 0.74 S m −1 and electronic conductivity: 0.059 S m −1 ). Benefiting from these superior properties, the multifunctional biogels demonstrate important applications in strain/pressure sensors, epidermal electrodes, and triboelectric nanogenerators. Intelligent gesture control and recognition systems are developed with the assistance of a convolutional neural network. This concept offers new opportunities for fabricating multifunctional and high-performance conductive biogels, paving the way for the development of intelligent flexible electronics.
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