Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixation of small building blocks to form fibrous hydrogels that are able to stiffen by an order of magnitude in response to applied stress. The gels consist of semi-flexible rodlike micelles of bisurea bolaamphiphiles with oligo(ethylene oxide) (EO) outer blocks and a polydiacetylene (PDA) backbone. The micelles are fibers, composed of 9–10 ribbons. A gelation method based on Cu-catalyzed azide–alkyne cycloaddition (CuAAC), was developed and shown to lead to strain-stiffening hydrogels with unusual, yet universal, linear and nonlinear stress–strain response. Upon gelation, the X-ray scattering profile is unchanged, suggesting that crosslinks are f...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
The stiffness of hydrogels is crucial for their application. Naturea(tm) s hydrogels become stiffer ...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
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...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
Supramolecular structures with strain-stiffening properties are ubiquitous in nature but remain rare...
Supramolecular structures with strain-stiffening properties are ubiquitous in nature but remain rare...
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...
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...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
The stiffness of hydrogels is crucial for their application. Naturea(tm) s hydrogels become stiffer ...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
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...
Biomimetic, strain-stiffening materials are reported, made through self-assembly and covalent fixati...
Supramolecular structures with strain-stiffening properties are ubiquitous in nature but remain rare...
Supramolecular structures with strain-stiffening properties are ubiquitous in nature but remain rare...
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...
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...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
The stiffness of hydrogels is crucial for their application. Naturea(tm) s hydrogels become stiffer ...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...