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测量 3D 胶体晶体缺陷产生的非线性应力。

Measuring nonlinear stresses generated by defects in 3D colloidal crystals.

机构信息

Department of Physics, Cornell University, Ithaca, New York 14853, USA.

Institute of Physics, University of Amsterdam, PO Box 94485, 1090 GL, Amsterdam, The Netherlands.

出版信息

Nat Mater. 2016 Nov;15(11):1172-1176. doi: 10.1038/nmat4715. Epub 2016 Aug 1.

Abstract

The mechanical, structural and functional properties of crystals are determined by their defects, and the distribution of stresses surrounding these defects has broad implications for the understanding of transport phenomena. When the defect density rises to levels routinely found in real-world materials, transport is governed by local stresses that are predominantly nonlinear. Such stress fields however, cannot be measured using conventional bulk and local measurement techniques. Here, we report direct and spatially resolved experimental measurements of the nonlinear stresses surrounding colloidal crystalline defect cores, and show that the stresses at vacancy cores generate attractive interactions between them. We also directly visualize the softening of crystalline regions surrounding dislocation cores, and find that stress fluctuations in quiescent polycrystals are uniformly distributed rather than localized at grain boundaries, as is the case in strained atomic polycrystals. Nonlinear stress measurements have important implications for strain hardening, yield and fatigue.

摘要

晶体的力学、结构和功能特性取决于其缺陷,而这些缺陷周围的应力分布对输运现象的理解有广泛的影响。当缺陷密度上升到实际材料中常见的水平时,输运由主要是非线性的局部应力控制。然而,这种应力场不能使用传统的体相和局域测量技术来测量。在这里,我们报告了胶体晶体缺陷核心周围非线性应力的直接和空间分辨实验测量,并表明空位核心处的应力产生了它们之间的吸引力相互作用。我们还直接观察到了位错核心周围晶体区域的软化,并发现静止多晶体中的应力波动是均匀分布的,而不是像应变原子多晶体那样局限于晶界处。非线性应力测量对应变硬化、屈服和疲劳有重要意义。

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