TY - JOUR
T1 - Spatial heterogeneity of flaw-sensitivity in tough hydrogels
AU - Zheng, Yong
AU - Wang, Zhengjin
AU - Hu, Jian
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/8
Y1 - 2026/8
N2 - Tough double-network (DN) hydrogels are widely regarded as promising soft materials for load-bearing applications due to their exceptional fracture resistance. However, the spatial heterogeneity in their fracture behavior, particularly how flaw-sensitivity varies across structurally distinct regions such as necked and un-necked zones, remains poorly understood. Here, we systematically investigate the flaw-sensitivity of DN hydrogels using single-edge notch tests (SENT) combined with real-time birefringence imaging and true stress analysis. By introducing controlled internal damage via pre-stretching, we generate gels exhibiting both necked and un-necked regions and assess the critical stretch ratio, engineering stress, and strain energy density at crack initiation. We uncover two distinct crack propagation scenarios governed by whether necking precedes or follows crack growth, and identify spatially dependent flaw-sensitivity with remarkably larger transition crack length c*I to II in un-necked regions than in necked ones. Remarkably, the true stress at fracture follows a unified scaling σtrue,c∝c0−1 across all regions and pre-damage levels, deviating significantly from linear elastic fracture mechanics predictions. We rationalize this behavior within an elastic-plastic fracture framework, demonstrating that the observed scaling is a hallmark of Large-Scale Yielding (LSY) and a Limit Load condition. In this regime, the fracture process is governed by a stress-limited cohesive zone where energy dissipation is capped by the necking plateau, akin to an elastic-perfectly plastic solid. Our findings reveal that the fracture resistance of DN gels is not uniform but is highly localized, governed by the interplay between microstructural damage and non-linear deformation, and provide critical insights for the design of flaw-tolerant soft materials.
AB - Tough double-network (DN) hydrogels are widely regarded as promising soft materials for load-bearing applications due to their exceptional fracture resistance. However, the spatial heterogeneity in their fracture behavior, particularly how flaw-sensitivity varies across structurally distinct regions such as necked and un-necked zones, remains poorly understood. Here, we systematically investigate the flaw-sensitivity of DN hydrogels using single-edge notch tests (SENT) combined with real-time birefringence imaging and true stress analysis. By introducing controlled internal damage via pre-stretching, we generate gels exhibiting both necked and un-necked regions and assess the critical stretch ratio, engineering stress, and strain energy density at crack initiation. We uncover two distinct crack propagation scenarios governed by whether necking precedes or follows crack growth, and identify spatially dependent flaw-sensitivity with remarkably larger transition crack length c*I to II in un-necked regions than in necked ones. Remarkably, the true stress at fracture follows a unified scaling σtrue,c∝c0−1 across all regions and pre-damage levels, deviating significantly from linear elastic fracture mechanics predictions. We rationalize this behavior within an elastic-plastic fracture framework, demonstrating that the observed scaling is a hallmark of Large-Scale Yielding (LSY) and a Limit Load condition. In this regime, the fracture process is governed by a stress-limited cohesive zone where energy dissipation is capped by the necking plateau, akin to an elastic-perfectly plastic solid. Our findings reveal that the fracture resistance of DN gels is not uniform but is highly localized, governed by the interplay between microstructural damage and non-linear deformation, and provide critical insights for the design of flaw-tolerant soft materials.
KW - Coexistence of necked and un-necked zone
KW - Flaw-sensitivity
KW - Necking instability
KW - Spatial heterogeneity
KW - Tough hydrogels
UR - https://www.scopus.com/pages/publications/105040772689
U2 - 10.1016/j.tafmec.2026.105710
DO - 10.1016/j.tafmec.2026.105710
M3 - 文章
AN - SCOPUS:105040772689
SN - 0167-8442
VL - 146
JO - Theoretical and Applied Fracture Mechanics
JF - Theoretical and Applied Fracture Mechanics
M1 - 105710
ER -