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Article Dans Une Revue Nanoscale Horizons Année : 2023

Nano-structural stiffness measure for soft biomaterials of heterogeneous elasticity

Résumé

Measuring the structural stiffness aims to reveal the impact of nanostructured components or various physiological circumstances on the elastic response of material to an external indentation. With a pyramidal tip at a nano-scale, we employed the atomic force microscopy (AFM) to indent the surfaces of two compositions of polyacrylamide gels with different softness and seedling roots of Arabidopsis thaliana. We found that the stiffness curve derived from the measured force exhibits a heterogeneous character in elasticity. According to the tendency of stiffness curve, we decomposed the responding force into depth-impact (FC), Hookean (FH) and tip-shape (FS) components, called trimechanic, and represent their strengths by the respective spring constants (kC, kH, kS) of three parallel-connected spring (3PCS) analogs to differentiate restoring nanomechansims of indented materials. The effective Young's modulus Ê and the total stiffness kT (= kH + kS) globally unambiguously distinguish the softness between the two gel categories. Data fluctuations were observed in the elasticity parameters of individual samples, reflecting nanostructural variations in the gel matrix. Similar tendencies were found in the results from growing plant roots, though the data fluctuations are expectedly much more dramatic. The zone-wise representation of stiffness by the trimechanic-3PCS framework demonstrates a stiffness measure that reflects beneath nanostructures encountered by deepened depth. It provides a new paradigm for analyzing restoring nanomechanics of soft biomaterials in response to indenting forces.
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Dates et versions

hal-03844878 , version 1 (09-11-2022)
hal-03844878 , version 2 (30-01-2023)

Identifiants

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Shu-Wen W Chen, Jean-Marie Teulon, Harinderbir Kaur, Christian Godon, Jean-Luc Pellequer. Nano-structural stiffness measure for soft biomaterials of heterogeneous elasticity. Nanoscale Horizons, 2023, ⟨10.1039/D2NH00390B⟩. ⟨hal-03844878v1⟩
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