材料科学
胶粘剂
粘附
聚合物
纳米技术
水溶液
表面能
复合材料
化学工程
单体
高分子化学
有机化学
化学
图层(电子)
工程类
作者
Chunyan Cui,Chuanchuan Fan,Yuanhao Wu,Meng Xiao,Tengling Wu,Dongfei Zhang,Xinyu Chen,Bo Liu,Ziyang Xu,Bo Qu,Wenguang Liu
标识
DOI:10.1002/adma.201905761
摘要
Abstract Despite recent advance in bioinspired adhesives, achieving strong adhesion and sealing hemostasis in aqueous and blood environments is challenging. A hyperbranched polymer (HBP) with a hydrophobic backbone and hydrophilic adhesive catechol side branches is designed and synthesized based on Michael addition reaction of multi‐vinyl monomers with dopamine. It is demonstrated that upon contacting water, the hydrophobic chains self‐aggregate to form coacervates quickly, displacing water molecules on the adherent surface to trigger increased exposure of catechol groups and thus rapidly strong adhesion to diverse materials from low surface energy to high energy in various environments, such as deionized water, sea water, PBS, and a wide range of pH solutions (pH = 3 to 11) without use of any oxidant. Also, this HBP adhesive (HBPA) exhibits a robust adhesion to fractured bone, precluding the problem of mismatched surface energy and mechanical properties. The HBPA's adhesion is repeatable in a wet condition. Intriguingly, the HBPA is capable of gluing dissimilar materials with distinct properties. Importantly, introducing long alkylamine into this modular hyperbranched architecture contributes to formation of an injectable hemostatic sealant that can rapidly stop visceral bleeding, especially hemorrhage from deep wound.
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