纳米纤维
胶粘剂
单宁酸
氧化还原
纳米复合材料
儿茶酚
双层
材料科学
自愈水凝胶
化学
化学工程
纤维素
膜
纳米技术
高分子化学
图层(电子)
有机化学
生物化学
工程类
作者
Yajun Chen,Yanan Zhang,Alfred Mensaha,Dawei Li,Qingqing Wang,Qufu Wei
标识
DOI:10.1016/j.carbpol.2020.117508
摘要
Long-lasting and reusable adhesive hydrogels are highly desirable in biomedical and relevant applications, however, its design still remains challenge. Here, a series of plant-inspired adhesive hydrogels were prepared based on Ag/Tannic acid-Cellulose nanofibers (Ag/TA-CNF) triggered reversible quinone/catechol chemistry, which mimicked the long-lasting reductive/oxidative balance in mussels. The dynamic redox system generated catechol groups inner the hydrogel continuously, imparting hydrogels with high and repeatable adhesiveness. Besides, the hydrogel still maintained its high adhesiveness after storing at extreme temperatures for 30 days. Furthermore, to broaden the biomedical applications of the hydrogels, the pre-gel solution with optimal composition was cast onto the surface of vaccarin-loaded electrospun nanofibers to form the bilayer nanocomposite hydrogel ([email protected]) in situ. The [email protected] with the intrinsic properties of the hydrogel layer (e.g. stretchable, adhesive, antioxidant, antifreezing, antidrying, photothermal and antibacterial) exhibited enhanced mechanical properties, sustained drug release and good cytocompatibility, which could be an attractive candidate for wound healing material. Taken together, this study may inspire new aspects for designing reusable and long-lasting adhesive hydrogels according to dynamic catechol chemistry.
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