Skin‐Inspired Antibacterial Conductive Hydrogels for Epidermal Sensors and Diabetic Foot Wound Dressings

材料科学 自愈水凝胶 导电体 生物医学工程 聚乙烯醇 抗菌活性 伤口敷料 自愈 伤口愈合 银纳米粒子 聚苯胺 导电油墨 3d打印 纳米技术 复合材料 纳米颗粒 聚合物 医学 高分子化学 细菌 薄板电阻 免疫学 替代医学 病理 生物 图层(电子) 遗传学 聚合
作者
Yüe Zhao,Zuhao Li,Shanliang Song,Kerong Yang,Hou Liu,Zhe Yang,Jincheng Wang,Yang Bai,Quan Lin
出处
期刊:Advanced Functional Materials [Wiley]
卷期号:29 (31) 被引量:521
标识
DOI:10.1002/adfm.201901474
摘要

Abstract Recently, artificial intelligence research has driven the development of stretchable and flexible electronic systems. Conductive hydrogels are a class of soft electronic materials that have emerging applications in wearable and implantable biomedical devices. However, current conductive hydrogels possess fundamental limitations in terms of their antibacterial performance and a mechanical mismatch with human tissues, which severely limits their applications in biological interfaces. Here, inspired by animal skin, a conductive hydrogel is fabricated from a supramolecular assembly of polydopamine decorated silver nanoparticles (PDA@Ag NPs), polyaniline, and polyvinyl alcohol, namely PDA@Ag NPs/CPHs. The resultant hydrogel has many desirable features, such as tunable mechanical and electrochemical properties, eye‐catching processability, good self‐healing ability as well as repeatable adhesiveness. Remarkably, PDA@Ag NPs/CPHs exhibit broad antibacterial activity against Gram‐negative and Gram‐positive bacteria. The potential application of this versatile hydrogel is demonstrated by monitoring large‐scale movements of the human body in real time. In addition, PDA@Ag NPs/CPHs have a significant therapeutic effect on diabetic foot wounds by promoting angiogenesis, accelerating collagen deposition, inhibiting bacterial growth, and controlling wound infection. To the best of the authors' knowledge, this is the first time that conductive hydrogels with antibacterial ability are developed for use as epidermal sensors and diabetic foot wound dressing.
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