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Mechanics of fiber networks under a bulk strain

Sadjad Arzash1,2,*, Abhinav Sharma3, and Fred C. MacKintosh1,2,4,5

  • 1Department of Chemical & Biomolecular Engineering, Rice University, Houston, Texas 77005, USA
  • 2Center for Theoretical Biological Physics, Rice University, Houston, Texas 77030, USA
  • 3Leibniz-Institut für Polymerforschung Dresden, Institut Theorie der Polymere, 01069 Dresden, Germany
  • 4Department of Chemistry, Rice University, Houston, Texas 77005, USA
  • 5Department of Physics & Astronomy, Rice University, Houston, Texas 77005, USA

  • *Present addresses: Department of Physics, Syracuse University, Syracuse, NY; Department of Physics & Astronomy, University of Pennsylvania, Philadelphia, PA.

Phys. Rev. E 106, L062403 – Published 19 December, 2022

DOI: https://doi.org/10.1103/PhysRevE.106.L062403

Abstract

Biopolymer networks are common in biological systems from the cytoskeleton of individual cells to collagen in the extracellular matrix. The mechanics of these systems under applied strain can be explained in some cases by a phase transition from soft to rigid states. For collagen networks, it has been shown that this transition is critical in nature and it is predicted to exhibit diverging fluctuations near a critical strain that depends on the network's connectivity and structure. Whereas prior work focused mostly on shear deformation that is more accessible experimentally, here we study the mechanics of such networks under an applied bulk or isotropic extension. We confirm that the bulk modulus of subisostatic fiber networks exhibits similar critical behavior as a function of bulk strain. We find different nonmean-field exponents for bulk as opposed to shear. We also confirm a similar hyperscaling relation to what was previously found for shear.

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