Symons Henry E, Galanti Agostino, Surmon Joseph C, Trask Richard S, Rochat Sebastien, Gobbo Pierangelo
School of Chemistry, University of Bristol, Bristol, BS8 1TS, UK.
Department of Chemical and Pharmaceutical Sciences, University of Trieste, Via Giorgieri 1, 34127, Trieste, Italy.
Soft Matter. 2022 Nov 9;18(43):8302-8314. doi: 10.1039/d2sm00857b.
An understanding of the mechanical properties of soft hydrogel materials over multiple length scales is important for their application in many fields. Typical measurement methods provide either bulk mechanical properties (compression, tensile, rheology) or probing of nano or microscale properties and heterogeneity (nanoindentation, AFM). In this work we demonstrate the complementarity of instrumented microindentation to these techniques, as it provides representative Young's moduli for soft materials with minimal influence of the experimental parameters chosen, and allows mechanical property mapping across macroscopic areas. To enable automated analysis of the large quantities of data required for these measurements, we develop a new fitting algorithm to process indentation data. This method allows for the determination of Young's moduli from imperfect data by automatic selection of a region of the indentation curve which does not display inelastic deformation or substrate effects. We demonstrate the applicability of our approach with a range of hydrogels, including materials with patterns and gradients in stiffness, and expect the techniques described here to be useful developments for the mechanical analysis of a wide range of soft and biological systems.
了解软水凝胶材料在多个长度尺度上的力学性能对于其在许多领域的应用至关重要。典型的测量方法要么提供体力学性能(压缩、拉伸、流变学),要么探测纳米或微米尺度的性能及异质性(纳米压痕、原子力显微镜)。在这项工作中,我们展示了仪器化微压痕与这些技术的互补性,因为它能为软材料提供具有代表性的杨氏模量,且所选实验参数的影响最小,并允许在宏观区域进行力学性能映射。为了能够自动分析这些测量所需的大量数据,我们开发了一种新的拟合算法来处理压痕数据。该方法通过自动选择压痕曲线中不显示非弹性变形或基底效应的区域,能够从不完美的数据中确定杨氏模量。我们用一系列水凝胶证明了我们方法的适用性,包括具有刚度图案和梯度的材料,并期望这里描述的技术能为广泛的软材料和生物系统的力学分析带来有用的进展。