Supramolecular structures with strain-stiffening properties are ubiquitous in nature but remain rare in the lab. Herein, we report on strain-stiffening supramolecular hydrogels that are entirely produced through the self-assembly of synthetic molecular gelators. The involved gelators self-assemble into semi-flexible fibers, which thereby crosslink into hydrogels. Interestingly, these hydrogels are capable of stiffening in response to applied stress, resembling biological intermediate filaments system. Furthermore, strain-stiffening hydrogel networks embedded with liposomes are constructed through orthogonal self-assembly of gelators and phospholipids, mimicking biological tissues in both architecture and mechanical properties. This work fur...
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...
The stiffness of hydrogels is crucial for their application. Naturea(tm) s hydrogels become stiffer ...
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...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
\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...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
[[abstract]]The strain-stiffening and self-healing capabilities of biological tissues enable them to...
[[abstract]]The strain-stiffening and self-healing capabilities of biological tissues enable them to...
[[abstract]]The strain-stiffening and self-healing capabilities of biological tissues enable them to...
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...
The stiffness of hydrogels is crucial for their application. Naturea(tm) s hydrogels become stiffer ...
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...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
\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...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
[[abstract]]The strain-stiffening and self-healing capabilities of biological tissues enable them to...
[[abstract]]The strain-stiffening and self-healing capabilities of biological tissues enable them to...
[[abstract]]The strain-stiffening and self-healing capabilities of biological tissues enable them to...
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...
The stiffness of hydrogels is crucial for their application. Naturea(tm) s hydrogels become stiffer ...