Brugarolas Teresa, Gianola Daniel S, Zhang Lei, Campbell Gregory M, Bassani John L, Feng Gang, Lee Daeyeon
Department of Chemical and Biomolecular Engineering, ‡Department of Materials Science and Engineering, and §Department of Mechanical Engineering and Applied Mechanics, University of Pennsylvania , Philadelphia, Pennsylvania 19104, United States .
ACS Appl Mater Interfaces. 2014 Jul 23;6(14):11558-72. doi: 10.1021/am502290h. Epub 2014 Jul 3.
One common approach to generate lightweight materials with high specific strength and stiffness is the incorporation of stiff hollow microparticles (also known as bubbles or microballoons) into a polymeric matrix. The mechanical properties of these composites, also known as syntactic foams, greatly depend on those of the hollow microparticles. It is critical to precisely control the properties of these bubbles to fabricate lightweight materials that are suitable for specific applications. In this paper, we present a method to tailor the mechanical properties and response of highly monodisperse nanoparticle-shelled bubbles using thermal treatment. We characterize the mechanical properties of individual as-assembled bubbles as well as those of thermally treated ones using nanoindentation and quantitative in situ compression tests. As-assembled bubbles display inelastic response, whereas thermally treated bubbles behave elastically. We also show that the stiffness and strength of bubbles are enhanced significantly, as much as 12 and 14 times that of the as-assembled bubbles, respectively, via thermal treatment. We complement the experimental results with finite element analysis (FEA) to understand the effect of shell thickness nonuniformity as well as the inelasticity on the mechanical response and fracture behavior of these bubbles. We demonstrate that the failure mechanism of bubbles incorporated into a polymer composite depends on the structure of the bubbles.
一种制造具有高比强度和高比刚度的轻质材料的常见方法是将刚性空心微粒(也称为气泡或微球)加入到聚合物基体中。这些复合材料(也称为复合泡沫材料)的力学性能在很大程度上取决于空心微粒的性能。精确控制这些气泡的性能对于制造适用于特定应用的轻质材料至关重要。在本文中,我们提出了一种通过热处理来调整高度单分散的纳米颗粒壳气泡的力学性能和响应的方法。我们使用纳米压痕和定量原位压缩试验来表征单个组装态气泡以及热处理后气泡的力学性能。组装态气泡表现出非弹性响应,而热处理后的气泡表现出弹性响应。我们还表明,通过热处理,气泡的刚度和强度分别显著提高,分别是组装态气泡的12倍和14倍。我们用有限元分析(FEA)对实验结果进行补充,以了解壳厚度不均匀性以及非弹性对这些气泡的力学响应和断裂行为的影响。我们证明,加入到聚合物复合材料中的气泡的失效机制取决于气泡的结构。