聚合物
动能
离解(化学)
氢键
材料科学
动力学
化学物理
纳米技术
残余物
计算机科学
分子
化学
生物系统
高分子科学
氢
分子动力学
自愈水凝胶
化学能
化学反应动力学
非平衡态热力学
高分子
化学过程
作者
Siyu Jin,Z D Zhang,MingChao Ji,Hu J,Dianteng Zhao,Y N Huang,Jiajia Xue,Hang Zhao,Bo Zheng,Xuzhou Yan,Lingyan Gao
标识
DOI:10.1038/s41467-026-75737-8
摘要
Developing high-performance impact-stiffening polymers that are broadly applicable across chemical systems remains a key challenge, as existing designs rely on meticulously engineered molecular motifs. Inspired by water’s role in biological impact resistance, we introduce a generalizable biomimetic paradigm. We transform water—commonly considered a property-limiting plasticizer—into an active, rate-sensitive cross-linker by structurally confining bound-water networks within proton-rich polymer scaffolds. Programming their dissociation kinetics enables a sharp, reversible soft-to-rigid transition under impact via kinetic freezing. This design, demonstrated in a poly(thioctic acid)-based system, concurrently achieves outstanding energy dissipation, self-healing, and strong adhesion. Crucially, it bypasses de novo synthesis of specialized motifs and is applicable across diverse polymer backbones, establishing programmable water dynamics as a versatile principle for adaptive polymeric materials. Impact stiffening polymers typically rely on specific chemical structures to enable dynamic cross-linking. Here, the authors report an impact-stiffening system which utilises the crosslinking of residual water to form dynamic hydrogen bonds within poly(thioctic acid) networks, which is appliable to variety of polymer networks.
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