Biological hydrogels can become many times stiffer under deformation. This unique ability has only recently been realised in fully synthetic gels. Typically, these networks are composed of semi-flexible polymers and bundles and show such large mechanical responses at very small strains, which makes them particularly suitable for application as strain-responsive materials. In this work, we introduced strain-responsiveness by crosslinking the architecture with a multi-functional virus-like particle. At high stresses, we find that the virus particles disintegrate, which creates an (irreversible) mechanical energy dissipation pathway, analogous to the high stress response of fibrin networks. A cooling-heating cycle allows for re-crosslinking at...
Biological materials combine stress relaxation and self-healing with non-linear stress-strain respon...
Hydrogels are water-swollen, typically soft networks useful as biomaterials and in other fields of b...
Hydrogels can be synthesized with most of the properties needed for biomaterials applications. Soft,...
\u3cp\u3eBiological hydrogels can become many times stiffer under deformation. This unique ability h...
Contains fulltext : 191669pos.pdf (postprint version ) (Open Access) ...
With expanding applications of hydrogels in diverse fields ranging from biomaterials to sensors, act...
Biological materials have evolved to combine a number of functionally relevant properties. They are ...
Biological materials have evolved to combine a number of functionally relevant properties. They are ...
One of the most intriguing and important aspects of biological supramolecular materials is its abili...
One of the most intriguing and important aspects of biological supramolecular materials is its abili...
Mechanical responsiveness is essential to all biological systems down to the level of tissues and ce...
Supramolecular structures with strain-stiffening properties are ubiquitous in nature but remain rare...
[[abstract]]The strain-stiffening and self-healing capabilities of biological tissues enable them to...
Hydrogels and organogels made from polymer networks are widely used in biomedical applications and s...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
Biological materials combine stress relaxation and self-healing with non-linear stress-strain respon...
Hydrogels are water-swollen, typically soft networks useful as biomaterials and in other fields of b...
Hydrogels can be synthesized with most of the properties needed for biomaterials applications. Soft,...
\u3cp\u3eBiological hydrogels can become many times stiffer under deformation. This unique ability h...
Contains fulltext : 191669pos.pdf (postprint version ) (Open Access) ...
With expanding applications of hydrogels in diverse fields ranging from biomaterials to sensors, act...
Biological materials have evolved to combine a number of functionally relevant properties. They are ...
Biological materials have evolved to combine a number of functionally relevant properties. They are ...
One of the most intriguing and important aspects of biological supramolecular materials is its abili...
One of the most intriguing and important aspects of biological supramolecular materials is its abili...
Mechanical responsiveness is essential to all biological systems down to the level of tissues and ce...
Supramolecular structures with strain-stiffening properties are ubiquitous in nature but remain rare...
[[abstract]]The strain-stiffening and self-healing capabilities of biological tissues enable them to...
Hydrogels and organogels made from polymer networks are widely used in biomedical applications and s...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
Biological materials combine stress relaxation and self-healing with non-linear stress-strain respon...
Hydrogels are water-swollen, typically soft networks useful as biomaterials and in other fields of b...
Hydrogels can be synthesized with most of the properties needed for biomaterials applications. Soft,...