Biomimetic hydrogels with triple networks have been developed via in situ polymerization and addition of graphene oxide (GO) nanosheets, which achieve improved toughness and superior fatigue resistance, simultaneously. Compared with pristine calcium alginate/polyacrylamide double network (DN) hydrogels, the integration of a calcium-induced graphene oxide network enhances the crosslinking degree of triple network (TN) hydrogels with improved compressive strength by 172% and toughness by 174%. In addition, cyclic compressive loading-unloading curves depict excellent fatigue resistance because of reversible calcium alginate and calcium-induced GO networks, whereas high strength and toughness of traditional DN gels derive from the first sacrifi...
Tough and self-healing hydrogels can be developed by incorporating non-covalent dynamic bonds in the...
Double-network hydrogels of different chemical compositions have been developed in recent years for ...
Chemically linked double network (DN) hydrogels display extraordinary mechanical attributes but most...
Double network (DN) hydrogels with two strong asymmetric networks being chemically linked have demon...
Superior mechanical properties and self-healing are two hot topics in hydrogel science due to their ...
To investigate the formation mechanism of a physically cross-linked double-network hydrogel and its ...
AbstractThe double network (DN) technique, developed by authors’ group, provides an innovative and u...
Incorporating sacrificial bonds into hydrogels networks has been demonstrated an efficient way to ob...
Designing hydrogels with high mechanical properties without sacrificing their self-healing efficienc...
Supertough biomimetic hydrogels have been fabricated through in situ synthesis and guided assembling...
Double network hydrogels (DN gels) are considered as one of the toughest soft materials. However, co...
We report a dual ionic cross-linking approach for the preparation of double-network hydrogels with r...
Many high-strength hydrogels have been developed in recent years; however, few of them are both toug...
This brief review attempts to summarize research advances in the mechanical toughness and structures...
In this review we highlight new developments in tough hydrogel materials in terms of their enhanced ...
Tough and self-healing hydrogels can be developed by incorporating non-covalent dynamic bonds in the...
Double-network hydrogels of different chemical compositions have been developed in recent years for ...
Chemically linked double network (DN) hydrogels display extraordinary mechanical attributes but most...
Double network (DN) hydrogels with two strong asymmetric networks being chemically linked have demon...
Superior mechanical properties and self-healing are two hot topics in hydrogel science due to their ...
To investigate the formation mechanism of a physically cross-linked double-network hydrogel and its ...
AbstractThe double network (DN) technique, developed by authors’ group, provides an innovative and u...
Incorporating sacrificial bonds into hydrogels networks has been demonstrated an efficient way to ob...
Designing hydrogels with high mechanical properties without sacrificing their self-healing efficienc...
Supertough biomimetic hydrogels have been fabricated through in situ synthesis and guided assembling...
Double network hydrogels (DN gels) are considered as one of the toughest soft materials. However, co...
We report a dual ionic cross-linking approach for the preparation of double-network hydrogels with r...
Many high-strength hydrogels have been developed in recent years; however, few of them are both toug...
This brief review attempts to summarize research advances in the mechanical toughness and structures...
In this review we highlight new developments in tough hydrogel materials in terms of their enhanced ...
Tough and self-healing hydrogels can be developed by incorporating non-covalent dynamic bonds in the...
Double-network hydrogels of different chemical compositions have been developed in recent years for ...
Chemically linked double network (DN) hydrogels display extraordinary mechanical attributes but most...