Synthetic hydrogels possessing both macroscopic anisotropic structure and toughness, which are analogous to the load-bearing bio-tissues such as muscles and tendons, are rarely available. Studying the molecular mechanism of tough and anisotropic hydrogel under deformation is beneficial to understand the load-deformation functions of soft bio-tissues. In this work, the deformation-induced structure transformation of a macroscopically anisotropic and tough hydrogel has been investigated to understand the role of structure evolution for enhanced toughness. At rest, the hydrogel possesses a well-defined hierarchical structure in which self-assembled nanometer thick lamellar bilayers are alternatively stacked in hundred nanometer thick hydrogel ...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
Hydrogels are major components of the human body. To replace a damaged hydrogel in the body or suppo...
Understanding the nanoscale structure and dynamics of supramolecular hydrogels is essential for expl...
International audienceSynthetic hydrogels possessing both macroscopic anisotropic structure and toug...
Soft tissues possess remarkable mechanical strength for their high water content, which is hard to m...
Natural structural materials (such as tendons and ligaments) are comprised of multiscale hierarchica...
Supramolecular structures with strain-stiffening properties are ubiquitous in nature but remain rare...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
\u3cp\u3eThe cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
In this highlight, we introduce a novel anisotropic hydrogel with a perfect 1D photonic crystal stru...
Tough soft materials usually show strain softening and inelastic deformation. Here, we study the mol...
Tuning the self-assembled structures in amorphous hydrogels will enrich the functionality of hydroge...
Fibrillar hydrogels are remarkably stiff, low-density networks that can hold vast amounts of water. ...
Contains fulltext : 169131.pdf (publisher's version ) (Open Access)Cells in the hu...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
Hydrogels are major components of the human body. To replace a damaged hydrogel in the body or suppo...
Understanding the nanoscale structure and dynamics of supramolecular hydrogels is essential for expl...
International audienceSynthetic hydrogels possessing both macroscopic anisotropic structure and toug...
Soft tissues possess remarkable mechanical strength for their high water content, which is hard to m...
Natural structural materials (such as tendons and ligaments) are comprised of multiscale hierarchica...
Supramolecular structures with strain-stiffening properties are ubiquitous in nature but remain rare...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
\u3cp\u3eThe cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
In this highlight, we introduce a novel anisotropic hydrogel with a perfect 1D photonic crystal stru...
Tough soft materials usually show strain softening and inelastic deformation. Here, we study the mol...
Tuning the self-assembled structures in amorphous hydrogels will enrich the functionality of hydroge...
Fibrillar hydrogels are remarkably stiff, low-density networks that can hold vast amounts of water. ...
Contains fulltext : 169131.pdf (publisher's version ) (Open Access)Cells in the hu...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
Hydrogels are major components of the human body. To replace a damaged hydrogel in the body or suppo...
Understanding the nanoscale structure and dynamics of supramolecular hydrogels is essential for expl...