材料科学
自愈
生物相容性
丝素
生物电子学
纳米技术
自愈水凝胶
胶粘剂
复合材料
柔性电子器件
生物污染
生物加工
组织工程
丝绸
生物医学工程
膜
高分子化学
生物传感器
化学
生物化学
图层(电子)
替代医学
冶金
病理
医学
作者
Jun Luo,Jiaojiao Yang,Xiaoran Zheng,Xiang Ke,Yantao Chen,Hong Tan,Jianshu Li
标识
DOI:10.1002/adhm.201901423
摘要
Abstract The development of biocompatible self‐healable hydrogel adhesives for skin or wet, stretchable surfaces in air or under water is highly desirable for various biomedical applications ranging from skin patches to bioelectronics. However, it has been proven to be very challenging because most existing hydrogel adhesives are cytotoxic, or poorly adhere to dynamic or stretchable surfaces in wet environments. In this study, multifunctional hydrogel adhesives derived from silk fibroin (SF) and tannic acid (TA) are effectively constructed with high extensibility (i.e., up to 32 000%), real‐time self‐healing capability, underwater adhesivity, water‐sealing ability, biocompatibility, and antibiotic properties. According to all‐atom molecular dynamics simulation studies, the properties of the hydrogel adhesives, especially high extensibility, are mainly attributed to the hydrogen bonds between TA and the SF chains in water, and water and TA molecules can result in loose assemblies with fewer β‐sheets, and more random coils in the SF. Conductivity can also be easily introduced to the adhesive matrix and adjusted when the strain of the adhesives occurs. Considering that it has multiple functions and can be efficiently prepared, the proposed hydrogel adhesives have the potential for future medical applications, such as tissue adhesives and integrated bioelectronics.
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