TY - JOUR
T1 - Comprehensive mechanical reinforcement of hydrogels via network refinement
AU - Li, Han
AU - Zhou, Zidi
AU - Gao, Yuan
AU - Lei, Jincheng
AU - Liu, Zishun
N1 - Publisher Copyright:
© 2026 The Author(s)
PY - 2026/6/19
Y1 - 2026/6/19
N2 - Traditional single-network hydrogels are limited by trade-offs among key mechanical properties, such as elastic modulus and toughness, and are further compromised by structural defects introduced during synthesis. These constraints significantly hinder their performance in demanding applications. Here, we propose a network-refinement strategy using repeated crosslinking to achieve comprehensive mechanical reinforcement. Through network refinement, structural defects within polymer networks are progressively filled, and both the network homogeneity and effective chain density are improved. The reinforced hydrogels exhibit up to a 6-fold increase in elastic modulus, a 10-fold enhancement in fracture toughness, a 20-fold increase in tensile strength, and a 42-fold improvement in work of fracture, while maintaining high stretchability and negligible hysteresis under moderate deformation. This universal strategy provides an effective route to comprehensively enhance the mechanical properties of hydrogel-like materials, paving the way for robust soft materials in applications such as cardiac healing patches, load-bearing biomedical implants, and wearable electronics.
AB - Traditional single-network hydrogels are limited by trade-offs among key mechanical properties, such as elastic modulus and toughness, and are further compromised by structural defects introduced during synthesis. These constraints significantly hinder their performance in demanding applications. Here, we propose a network-refinement strategy using repeated crosslinking to achieve comprehensive mechanical reinforcement. Through network refinement, structural defects within polymer networks are progressively filled, and both the network homogeneity and effective chain density are improved. The reinforced hydrogels exhibit up to a 6-fold increase in elastic modulus, a 10-fold enhancement in fracture toughness, a 20-fold increase in tensile strength, and a 42-fold improvement in work of fracture, while maintaining high stretchability and negligible hysteresis under moderate deformation. This universal strategy provides an effective route to comprehensively enhance the mechanical properties of hydrogel-like materials, paving the way for robust soft materials in applications such as cardiac healing patches, load-bearing biomedical implants, and wearable electronics.
KW - Materials science
KW - Mechanical property
KW - Polymers
UR - https://www.scopus.com/pages/publications/105040592364
U2 - 10.1016/j.isci.2026.116191
DO - 10.1016/j.isci.2026.116191
M3 - 文章
AN - SCOPUS:105040592364
SN - 2589-0042
VL - 29
JO - iScience
JF - iScience
IS - 6
M1 - 116191
ER -