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纳米划痕自修复材料的建模。

Modeling the nanoscratching of self-healing materials.

机构信息

Chemical Engineering Department, University of Pittsburgh, Pittsburgh, Pennsylvania 15261, USA.

出版信息

J Chem Phys. 2011 Feb 28;134(8):084901. doi: 10.1063/1.3556744.

Abstract

We use computational modeling to determine the mechanical response of crosslinked nanogels to an atomic force microscope (AFM) tip that is moved through the sample. We focus on two-dimensional systems where the nanogels are interconnected by both strong and labile bonds. To simulate this system, we modify the lattice spring model (LSM) to extend the applicability of this method to a broader range of elastic materials. Via this modified LSM, we model each nanogel as a deformable particle. We utilize the Bell model to describe the bonds between these nanogel particles, and subsequently, simulate the rupturing of bonds due to the force exerted by the moving indenter. The ruptured labile bonds can readily reform and thus can effectively mend the cavities formed by the moving AFM tip. We determine how the fraction of labile bonds, the nanogel stiffness, and the size and velocity of the moving tip affect the self-healing behavior of the material. We find that samples containing just 10% of labile bonds can heal to approximately 90% of their original, undeformed morphology. Our results provide guidelines for creating reconfigurable materials that can undergo self-repair and thereby withstand greater mechanical stress under everyday use.

摘要

我们使用计算建模来确定交联纳米凝胶对原子力显微镜(AFM)尖端的机械响应,该尖端在样品中移动。我们专注于二维系统,其中纳米凝胶通过强键和不稳定键相互连接。为了模拟这个系统,我们修改了晶格弹簧模型(LSM),以扩大这种方法在更广泛的弹性材料中的适用性。通过这个修改后的 LSM,我们将每个纳米凝胶建模为一个可变形的粒子。我们利用 Bell 模型来描述这些纳米凝胶粒子之间的键,然后模拟由于移动压头施加的力而导致键的破裂。易断的键可以很容易地重新形成,从而有效地修复移动 AFM 尖端形成的空腔。我们确定易断键的比例、纳米凝胶的刚度、移动尖端的大小和速度如何影响材料的自修复行为。我们发现,含有仅 10%易断键的样品可以修复到其原始、未变形形态的约 90%。我们的结果为创建可重新配置的材料提供了指导,这些材料可以进行自我修复,从而在日常使用中承受更大的机械应力。

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