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Open access Jul 2026

Bound water as a kinetic crosslinker for bio-inspired impact-stiffening polymers

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.

Siyu Jin, Zhaoming Zhang, Menghao Ji et al. · 0 citations