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Investigation of micromechanical properties of hard sphere filled composite hydrogels by atomic force microscopy and finite element simulations

机译:用原子力显微镜和有限元模拟研究硬球填充复合水凝胶微机械性能的研究

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摘要

Abstract Atomic force microscopy (AFM) indentation is the most suitable way to characterize micromechanical properties of soft materials such as bio tissues. However, the mechanical data obtained from force-indentation measurement are still not well understood due to complex geometry of the bio tissue, nonlinearity of indentation contact, and constitutive relation of hyperelastic soft material. Poly-N-isopropyl acrylamide (PNIPAM) filled with 5wt% polystyrene (PS) sphere particles material system can be utilized as a simplified model for mimicking a whole host of soft materials. Finite element model has been constructed to simulate indentation as in AFM experiments using colloidal probes for a parametric study, with the main purpose of understanding the effect of particles on overall behavior of mechanical data and local deformation field under indentation contact. Direct comparison between finite element simulation and indentation data from AFM experiments provides a powerful method to characterize soft materials properties quantitatively, addressing the lack of analytical solutions for hard-soft composites, both biological and synthetic ones. In this framework, quantitative relations are found between the depth, at which the particle was embedded, the particle size and the elastic modulus of the overall composite. Comprehensive characterizations were established to distinguish indentation on a particle residing on top of the hydrogel from a particle embedded inside the hydrogel matrix. Finally, different assumptions of interface friction at the boundary between the particle and the hydrogel have been tested and directly compared with experimental measurements.
机译:摘要原子力显微镜(AFM)压痕是表征诸如生物组织如生物组织的微机械性能的最合适的方法。然而,由于生物组织的复杂几何形状,压痕接触的非线性以及超痉挛软材料的本构关系,仍然没有很好地理解从力缩进测量获得的机械数据。填充有5wt%聚苯乙烯(PS)球体颗粒材料体系的聚氨酯丙烯酰胺(PNIPAM)可用作模拟全宿主的软材料的简化模型。已经构建有限元模型以模拟使用胶体探头进行参数研究的AFM实验中的压痕,主要目的是了解粒子对压痕接触下机械数据和局部变形场的整体行为的影响。来自AFM实验的有限元仿真和压痕数据之间的直接比较提供了一种能力的方法,可以定量表征软材料特性,解决硬软复合材料的缺乏分析解决方案,都是生物和合成材料。在该框架中,在嵌入颗粒的深度,粒径和整体复合材料的弹性模量之间发现定量关系。建立综合表征以区分从嵌入水凝胶基质内部的颗粒上留在水凝胶顶部的颗粒上的压痕。最后,已经测试了与实验测量相比的颗粒与水凝胶之间的边界处的界面摩擦在界面上的不同假设。

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