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复杂等离子体晶体塑性变形过程中的位错动力学

Dislocation dynamics during plastic deformations of complex plasma crystals.

作者信息

Durniak C, Samsonov D, Ralph J F, Zhdanov S, Morfill G

机构信息

Department of Electrical Engineering and Electronics, The University of Liverpool, Liverpool L69 3GJ, England, United Kingdom.

Max-Planck-Institut für Extraterrestrische Physik, D-85741 Garching, Germany.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2013 Nov;88(5):053101. doi: 10.1103/PhysRevE.88.053101. Epub 2013 Nov 1.

DOI:10.1103/PhysRevE.88.053101
PMID:24329366
Abstract

The internal structures of most periodic crystalline solids contain defects. This affects various important mechanical and thermal properties of crystals. Since it is very difficult and expensive to track the motion of individual atoms in real solids, macroscopic model systems, such as complex plasmas, are often used. Complex plasmas consist of micrometer-sized grains immersed into an ion-electron plasma. They exist in solidlike, liquidlike, and gaseouslike states and exhibit a range of nonlinear and dynamic effects, most of which have direct analogies in solids and liquids. Slabs of a monolayer hexagonal complex plasma were subjected to a cycle of uniaxial compression and decompression of large amplitudes to achieve plastic deformations, both in experiments and simulations. During the cycle, the internal structure of the lattice exhibited significant rearrangements. Dislocations (point defects) were generated and displaced in the stressed lattice. They tended to glide parallel to their Burgers vectors under load. It was found that the deformation cycle was macroscopically reversible but irreversible at the particle scale.

摘要

大多数周期性晶体固体的内部结构都存在缺陷。这会影响晶体的各种重要力学和热学性质。由于在实际固体中追踪单个原子的运动非常困难且成本高昂,因此常常使用宏观模型系统,比如复杂等离子体。复杂等离子体由浸没在离子 - 电子等离子体中的微米级颗粒组成。它们存在于类固态、类液态和气态状态,并表现出一系列非线性和动态效应,其中大多数在固体和液体中有直接的类似情况。在实验和模拟中,对单层六角形复杂等离子体的平板进行了大幅度单轴压缩和减压循环,以实现塑性变形。在这个循环过程中,晶格的内部结构出现了显著的重新排列。位错(点缺陷)在受力晶格中产生并移动。在负载下,它们倾向于平行于其柏氏矢量滑移。研究发现,变形循环在宏观上是可逆的,但在粒子尺度上是不可逆的。

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