Issue 12, 2024

Rate-independent hysteretic energy dissipation in collagen fibrils

Abstract

Nanoindentation cycles measured with an atomic force microscope on hydrated collagen fibrils exhibit a rate-independent hysteresis with return point memory. This previously unknown energy dissipation mechanism describes in unified form elastoplastic indentation, capillary adhesion, and surface leveling at indentation velocities smaller than 1 μm s−1, where viscous friction is negligible. A generic hysteresis model, based on force–distance data measured during one large approach-retract cycle, predicts the force (output) and the dissipated energy for arbitrary indentation trajectories (input). While both quantities are rate independent, they do depend nonlinearly on indentation history and on indentation amplitude.

Graphical abstract: Rate-independent hysteretic energy dissipation in collagen fibrils

Supplementary files

Article information

Article type
Paper
Submitted
01 Dec 2023
Accepted
19 Feb 2024
First published
20 Feb 2024

Soft Matter, 2024,20, 2831-2839

Rate-independent hysteretic energy dissipation in collagen fibrils

R. Magerle, P. Zech, M. Dehnert, A. Bendixen and A. Otto, Soft Matter, 2024, 20, 2831 DOI: 10.1039/D3SM01625K

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