Smart materials with self-growing and tailorable mechanical strength have wide-range potential applications in self-healing, self-repairing, self-assembly, artificial muscle, soft robots and intelligent devices. However, their working mechanisms and principles are not fully understood yet and mathematically and physical modeling is a huge challenge, as traditionally synthesized materials cannot self-grow and reconstruct themselves once formed or deformed. In this study, a phenomenological constitutive model was developed to investigate the working mechanisms of self-growing and tailorable mechanical strength in double-network (DN) hydrogel composites, induced by mechanochemical transduction of dynamic-modal mechanophore. An extended Maxwell...
Double network (DN) hydrogels with two strong asymmetric networks being chemically linked have demon...
Tough and self-healing hydrogels can be developed by incorporating non-covalent dynamic bonds in the...
Hydrogels are major components of the human body. To replace a damaged hydrogel in the body or suppo...
Smart materials with self-growing and tailorable mechanical strength have wide-range potential appli...
We present a phenomenological model for dynamic deformation and mechanical response of double-networ...
Self‐healing capability offers great designability on mechanical properties of double‐network (DN) h...
Polyampholytes have been widely used to improve mechanical performance of double-network (DN) hydrog...
Incorporating flexible cross-links into a brittle network for hydrogel not only significantly improv...
AbstractThe double network (DN) technique, developed by authors’ group, provides an innovative and u...
Hydrogels are polymeric materials that have a relatively high capacity for holding water. Recently, ...
In this paper, a micro-mechanically based constitutive model is presented to describe stress softeni...
Biological soft tissues are intrinsically viscoelastic materials which play a significant role in af...
Different from the conventional single-network hydrogels, double-network (DN) hydrogels have attract...
Unlike single-network hydrogel whose thermodynamic equilibrium of all phases is governed by one sing...
Mechanical robustness is one of the challenges for soft hydrogels, which are difficult to repair onc...
Double network (DN) hydrogels with two strong asymmetric networks being chemically linked have demon...
Tough and self-healing hydrogels can be developed by incorporating non-covalent dynamic bonds in the...
Hydrogels are major components of the human body. To replace a damaged hydrogel in the body or suppo...
Smart materials with self-growing and tailorable mechanical strength have wide-range potential appli...
We present a phenomenological model for dynamic deformation and mechanical response of double-networ...
Self‐healing capability offers great designability on mechanical properties of double‐network (DN) h...
Polyampholytes have been widely used to improve mechanical performance of double-network (DN) hydrog...
Incorporating flexible cross-links into a brittle network for hydrogel not only significantly improv...
AbstractThe double network (DN) technique, developed by authors’ group, provides an innovative and u...
Hydrogels are polymeric materials that have a relatively high capacity for holding water. Recently, ...
In this paper, a micro-mechanically based constitutive model is presented to describe stress softeni...
Biological soft tissues are intrinsically viscoelastic materials which play a significant role in af...
Different from the conventional single-network hydrogels, double-network (DN) hydrogels have attract...
Unlike single-network hydrogel whose thermodynamic equilibrium of all phases is governed by one sing...
Mechanical robustness is one of the challenges for soft hydrogels, which are difficult to repair onc...
Double network (DN) hydrogels with two strong asymmetric networks being chemically linked have demon...
Tough and self-healing hydrogels can be developed by incorporating non-covalent dynamic bonds in the...
Hydrogels are major components of the human body. To replace a damaged hydrogel in the body or suppo...