Fibrous networks are ideal functional materials since they provide mechanical rigidity at low weight. Here, we demonstrate that fibrous networks of the blood clotting protein fibrin undergo a strong and irreversible increase in their mechanical rigidity in response to uniaxial compression. This rigidification can be precisely controlled by the level of applied compressive strain, providing a means to program the network rigidity without having to change its composition. To identify the underlying mechanism we measure single fiber–fiber interactions using optical tweezers. We further develop a minimal computational model of cohesive fiber networks that shows that stiffening arises due to the formation of new bonds in the compressed state, wh...
Disordered fibrous networks are ubiquitous in nature as major structural components of living cells ...
The rheological properties of fibrin networks have been of long-standing interest. As such there is ...
Bundles of polymer filaments are responsible for the rich and unique mechanical behaviors of many bi...
Fibrous networks are ideal functional materials since they provide mechanical rigidity at low weight...
Fibrin is a viscoelastic proteinaceous polymer that determines the deformability and integrity of bl...
AbstractAs the structural backbone of blood clots, fibrin networks carry out the mechanical task of ...
The ability of tissues to sustain and withstand mechanical stress is critical to tissue development ...
Fibrin networks are important components of extracellular proteinaceous gels that are widely used in...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
As the structural backbone of blood clots, fibrin networks carry out the mechanical task of stemming...
Both animal and plant tissue exhibit a nonlinear rheological phenomenon known as compression stiffen...
Disordered fibrous networks are ubiquitous in nature as major structural components of living cells ...
The rheological properties of fibrin networks have been of long-standing interest. As such there is ...
Bundles of polymer filaments are responsible for the rich and unique mechanical behaviors of many bi...
Fibrous networks are ideal functional materials since they provide mechanical rigidity at low weight...
Fibrin is a viscoelastic proteinaceous polymer that determines the deformability and integrity of bl...
AbstractAs the structural backbone of blood clots, fibrin networks carry out the mechanical task of ...
The ability of tissues to sustain and withstand mechanical stress is critical to tissue development ...
Fibrin networks are important components of extracellular proteinaceous gels that are widely used in...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
Tissues and cells sustain recurring mechanical loads that span a wide range of loading amplitudes an...
As the structural backbone of blood clots, fibrin networks carry out the mechanical task of stemming...
Both animal and plant tissue exhibit a nonlinear rheological phenomenon known as compression stiffen...
Disordered fibrous networks are ubiquitous in nature as major structural components of living cells ...
The rheological properties of fibrin networks have been of long-standing interest. As such there is ...
Bundles of polymer filaments are responsible for the rich and unique mechanical behaviors of many bi...