Networks with only central force interactions are floppy when their average connectivity is below an isostatic threshold. Although such networks are mechanically unstable, they can become rigid when strained. It was recently shown that the transition from floppy to rigid states as a function of simple shear strain is continuous, with hallmark signatures of criticality [Sharma et al., Nature Phys. 12, 584 (2016)1745-247310.1038/nphys3628]. The nonlinear mechanical response of collagen networks was shown to be quantitatively described within the framework of such mechanical critical phenomenon. Here, we provide a more quantitative characterization of critical behavior in subisostatic networks. Using finite-size scaling we demonstrate the dive...
We present theoretical and experimental studies of the elastic response of fibrous networks subjecte...
Disordered spring networks that are undercoordinated may abruptly rigidify when sufficient strain is...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
Networks with only central force interactions are floppy when their average connectivity is below an...
Disordered fibrous networks are ubiquitous in nature as major structural components of living cells ...
Naturally occurring biopolymers such as collagen and actin form branched fibrous networks. The avera...
Naturally occurring biopolymers such as collagen and actin form branched fibrous networks. The avera...
The mechanics of disordered fibrous networks such as those that make up the extracellular matrix are...
Disordered fibre networks are the basis of many man-made and natural materials, including structural...
We show that the nonlinear mechanical response of networks formed from un-cross-linked fibrin or col...
In this paper we study the elastic response of synthetic hydrogels to an applied shear stress. The h...
Collagen forms fibrous networks that reinforce tissues and provide an extracellular matrix for cells...
Collagen is the main structural and load-bearing element of various connective tissues, where it for...
We present theoretical and experimental studies of the elastic response of fibrous networks subjecte...
Disordered spring networks that are undercoordinated may abruptly rigidify when sufficient strain is...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
Networks with only central force interactions are floppy when their average connectivity is below an...
Disordered fibrous networks are ubiquitous in nature as major structural components of living cells ...
Naturally occurring biopolymers such as collagen and actin form branched fibrous networks. The avera...
Naturally occurring biopolymers such as collagen and actin form branched fibrous networks. The avera...
The mechanics of disordered fibrous networks such as those that make up the extracellular matrix are...
Disordered fibre networks are the basis of many man-made and natural materials, including structural...
We show that the nonlinear mechanical response of networks formed from un-cross-linked fibrin or col...
In this paper we study the elastic response of synthetic hydrogels to an applied shear stress. The h...
Collagen forms fibrous networks that reinforce tissues and provide an extracellular matrix for cells...
Collagen is the main structural and load-bearing element of various connective tissues, where it for...
We present theoretical and experimental studies of the elastic response of fibrous networks subjecte...
Disordered spring networks that are undercoordinated may abruptly rigidify when sufficient strain is...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...