Conductive and antibacterial dual-network hydrogel for soft bioelectronics

生物电子学 生物相容性材料 材料科学 对偶(语法数字) 导电体 纳米技术 双重角色 胶粘剂 导电聚合物 导电的 生物传感器 复合材料 生物医学工程 聚合物 化学 工程类 组合化学 艺术 文学类 图层(电子)
作者
Huiqi Sun,Sai Wang,Fan Yang,Mingyi Tan,Ling Bai,Peipei Wang,Yingying Feng,Wenbo Liu,Rongguo Wang,Xiaodong He
出处
期刊:Materials horizons [Royal Society of Chemistry]
卷期号:10 (12): 5805-5821 被引量:42
标识
DOI:10.1039/d3mh00813d
摘要

Conductive hydrogels have shown significant potential for use in soft bioelectronics due to their unique similarities to biological tissue, including high water content, low modulus, and conductivity. However, their high water content makes them susceptible to absorbing microorganisms and promoting bacterial growth, which can trigger an immune response. Besides, the adhesion and biocompatibility of the hydrogel are not satisfactory, seriously limiting the conductive hydrogel's high-performance applications in human healthcare monitoring. Herein, the problem is addressed by introducing borax through a swelling and a semi-dehydration method into the interpenetrated network of a polyvinyl alcohol and poly(acrylic acid) hydrogel. The hydrogel exhibits both outstanding antibacterial (>99.99% toward E. coli and S. aureus) activity and high ionic conductivity, in addition to tissue-like softness, strong wet-tissue adhesion (600 J m-2 for skin), environmental stability, and excellent biocompatibility. Furthermore, the as-prepared hydrogel can serve as a biosensing conductor, showing high-quality recording and monitoring of real-time tiny yet complex muscle movements during speaking and realizing neuromodulation through low-current electronic stimulation (40 μA) of a rat's nerve. Simultaneously, the hydrogel also exhibits the capacity to accelerate wound healing. Therefore, the proposed antibacterial conductive hydrogel is a safer option for next-generation bioelectronic materials in human healthcare.
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