自愈水凝胶
水下
材料科学
组分(热力学)
复合材料
纳米技术
生物医学工程
聚合物
结构完整性
肿胀 的
作者
Baibin Yang,Peipei Ma,Ting You,Bingquan Ding,Caihong Wang,Qiang Zhao,Yong Wu,Shuai Tan
摘要
-carboxyl coordination in the hydrogels serves as a lock, which bundles neighboring poly(sodium acrylate) chains to resist water intrusion into the polymer network for structural maintenance in underwater conditions, as well as constructs loose porous structures exposing the inside water to the surroundings. The obtained hydrogels with coordination-locked networks show long-term stability, self-healing, and ultra-high stretchability of ∼30 with an equilibrium-water-content of ∼70 wt% in versatile underwater conditions, and achieve rapid dehydration and loss of flexibility within 30 min in overwater conditions. Owing to their unique switchable characteristics, the hydrogels demonstrate multiple concealed functionalities that are activated only in underwater conditions. The work here deepens the understanding of poly(sodium acrylate) hydrogels and paves a new way for the design and remolding of hydrogel topology tailored for underwater-only functions.
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