Chen Chen-Kang, Lin Chien-Yin, Chakravarthy Rajan Deepan, Chen Yu-Hsu, Chen Chieh-Yi, Lin Hsin-Chieh, Yeh Mei-Yu
Department of Chemistry, Chung Yuan Christian University, Taoyuan 320314, Taiwan.
Department of Materials Science and Engineering, National Yang Ming Chiao Tung University, Hsinchu 300093, Taiwan.
Materials (Basel). 2025 Aug 18;18(16):3871. doi: 10.3390/ma18163871.
Conductive hydrogels hold great promise for biomedical and electronic applications. However, their practical use is often limited by poor self-healing capability, which can affect long-term stability and durability. To address this, we developed alginate/polyacrylamide-based conductive hydrogels incorporating FeCl and AlCl, named CH-Fe and CH-Al, respectively. We systematically studied the influence of metal cations on the hydrogels' mechanical and electrical properties. CH-Al showed the most optimized performance, with a 329% increase in tensile strength and a 323% improvement in conductivity compared to the blank hydrogel. Additionally, CH-Al demonstrated excellent self-healing ability, with nearly 100% recovery after damage. The introduction of Al improved conductivity by forming dynamic electron-conductive pathways through interactions with the polymer network. The self-healing behavior arises from reversible metal-ligand coordination bonds, which enable rapid recovery of the hydrogel's structure after mechanical disruption. This study successfully developed a conductive hydrogel that combines high electrical conductivity, robust mechanical strength, and an intrinsic self-healing ability, offering significant potential for applications in bioelectronic devices, flexible sensors, and implantable medical technologies.
导电水凝胶在生物医学和电子应用方面具有巨大潜力。然而,它们的实际应用常常受到自愈合能力差的限制,这会影响其长期稳定性和耐久性。为了解决这个问题,我们开发了分别含有FeCl和AlCl的基于藻酸盐/聚丙烯酰胺的导电水凝胶,分别命名为CH-Fe和CH-Al。我们系统地研究了金属阳离子对水凝胶力学和电学性能的影响。CH-Al表现出最优化的性能,与空白水凝胶相比,其拉伸强度提高了329%,电导率提高了323%。此外,CH-Al表现出优异的自愈合能力,损伤后几乎100%恢复。Al的引入通过与聚合物网络相互作用形成动态电子传导途径提高了电导率。自愈合行为源于可逆的金属-配体配位键,这使得水凝胶在机械破坏后能够迅速恢复结构。本研究成功开发了一种兼具高电导率、强大机械强度和内在自愈合能力的导电水凝胶,在生物电子器件、柔性传感器和可植入医疗技术等应用方面具有巨大潜力。