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纳米颗粒尺寸对纳米颗粒组装体力学性能的影响。

Effect of nanoparticle size on the mechanical properties of nanoparticle assemblies.

作者信息

An Lu, Zhang Di, Zhang Lin, Feng Gang

机构信息

Department of Mechanical Engineering, Villanova University, Villanova, PA 19085, USA.

Department of Mechanical Engineering, Valparaiso University, Valparaiso, IN 46383, USA.

出版信息

Nanoscale. 2019 May 16;11(19):9563-9573. doi: 10.1039/c9nr01082c.

Abstract

Nanoparticle assemblies (NPAs) have attracted tremendous interests of various research communities. The particle-size-effect on mechanical properties of NPAs is systematically studied. With decreasing the particle size d from 300 nm to 10 nm, the SiO2 NPAs become drastically harder (∼39×), stiffer (∼15×), and tougher (>3.5×). The results are consistent with the data scattered in the literature for various nanoparticle (NP) systems, indicating a fundamentally universal d-effect for all NPAs. A model is developed to correlate the hardness and the NP junction (NPJ) strength f. Here, f is mainly due to van der Waals and capillary interactions, roughly a constant (140 nN) for d = 100-300 nm, and then f decreases with decreasing d from ∼100 nm. The deformation mechanism of NPAs (for indentation depth ≫d) is shear plasticity involving shear breaking of NPJs. The fundamental mechanism for the d-effect is that, with decreasing d, the NPJ's planar density increases much faster than the decrease of f. Moreover, three deformation mechanisms of NPAs, (1) nanoparticle dislodging, (2) shear-band formation, and (3) cracking are naturally d-dependent. These new findings can provide important insights into the fundamental understanding of the inter-NP interaction, the mechanical behavior of the NPAs, and the design of robust NP-based devices.

摘要

纳米颗粒聚集体(NPAs)已引起了各个研究领域的极大兴趣。系统地研究了颗粒尺寸对NPAs力学性能的影响。随着颗粒尺寸d从300nm减小到10nm,SiO2 NPAs变得明显更硬(约39倍)、更刚硬(约15倍)且更坚韧(>3.5倍)。这些结果与文献中各种纳米颗粒(NP)系统分散的数据一致,表明所有NPAs都存在一种基本的普遍尺寸效应。建立了一个模型来关联硬度和NP结(NPJ)强度f。在此,f主要归因于范德华力和毛细相互作用,对于d = 100 - 300nm大致为常数(140 nN),然后随着d从约100nm减小,f降低。NPAs的变形机制(对于压痕深度≫d)是涉及NPJs剪切断裂的剪切塑性。尺寸效应的基本机制是,随着d减小,NPJ的平面密度增加的速度远快于f的降低。此外,NPAs的三种变形机制,(1)纳米颗粒位移,(2)剪切带形成,和(3)开裂自然地依赖于d。这些新发现可以为深入理解NP之间的相互作用、NPAs的力学行为以及坚固的基于NP的器件的设计提供重要见解。

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