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April 6, 2026Advanced Materials5 citationsOpen Access

Superior Impact‐Resistant Composite Hydrogels Through an Ionic Coupling Strategy

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HZHao ZhuoQLQuyang LiuXDXinyu Dong

Key Points

  • The aim is to develop a composite hydrogel that achieves superior impact resistance through an ionic coupling strategy.
  • Composite hydrogel development with poly(vinyl alcohol) matrix and chitosan-sodium alginate nanofibers
  • Utilization of sodium citrate as a multifunctional ionic coupler
  • Molecular-level experimental and simulation analyses
  • Achieved impact strength of 426.7 MPa and toughness of 106.4 MJ m^-3 at high strain rates
  • Retained excellent tensile properties with a tensile strength of 54.2 MPa and fracture strain of 590%
  • Demonstrated effective stress transfer and energy dissipation through the composite structure

Abstract

Impact resistance emerges from the coupling of strong load-bearing networks and dynamic interfacial interactions that enable effective stress transfer and energy dissipation. Although hydrogels are promising candidates for impact-resistant soft materials, it remains challenging to reinforce both networks and interfaces simultaneously in hydrogels, which limits their performance under high strain-rate loading. To overcome this limitation, we develop a composite hydrogel comprised of a poly(vinyl alcohol) (PVA) matrix reinforced with chitosan-sodium alginate nanofibers (CSNFs), using sodium citrate as a multifunctional ionic coupler that (i) strengthens the PVA matrix via the Hofmeister effect, (ii) reinforces the CSNF network through desolvation and electrostatic crosslinking, and (iii) improves their fiber-matrix interfaces, enabling efficient stress transfer and energy dissipation through the integrated composite network and layered microstructure. The composite hydrogel achieves superior impact resistance relative to high-performance solid polymers, with an impact strength of 426.7 MPa and toughness of 106.4 MJ m- 3 at 7000 s- 1, while retaining excellent tensile properties (tensile strength: 54.2 MPa; fracture strain: 590%). By molecular-level experimental and simulation analyses, this work establishes ionic coupling as a facile yet effective strategy for achieving composite hydrogels with extreme impact resistance, broadening the potential of soft materials in impact protection, damping, and energy absorption.

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Cite This Study

Zhuo et al. (2026) studied this question.

synapsesocial.com/papers/69d34e1e9c07852e0af97b7chttps://doi.org/10.1002/adma.73010
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