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纳秒白光劳厄衍射测量冲击压缩单晶铜中位错微结构。

Nanosecond white-light Laue diffraction measurements of dislocation microstructure in shock-compressed single-crystal copper.

机构信息

Department of Physics, Clarendon Laboratory, University of Oxford, Parks Road, Oxford OX1 3PU, UK.

出版信息

Nat Commun. 2012;3:1224. doi: 10.1038/ncomms2225.

Abstract

Under uniaxial high-stress shock compression it is believed that crystalline materials undergo complex, rapid, micro-structural changes to relieve the large applied shear stresses. Diagnosing the underlying mechanisms involved remains a significant challenge in the field of shock physics, and is critical for furthering our understanding of the fundamental lattice-level physics, and for the validation of multi-scale models of shock compression. Here we employ white-light X-ray Laue diffraction on a nanosecond timescale to make the first in situ observations of the stress relaxation mechanism in a laser-shocked crystal. The measurements were made on single-crystal copper, shocked along the [001] axis to peak stresses of order 50 GPa. The results demonstrate the presence of stress-dependent lattice rotations along specific crystallographic directions. The orientation of the rotations suggests that there is double slip on conjugate systems. In this model, the rotation magnitudes are consistent with defect densities of order 10(12) cm(-2).

摘要

在单轴高应力冲击压缩下,人们认为晶体材料会经历复杂、快速的微观结构变化,以缓解大的剪切应力。诊断所涉及的潜在机制仍然是冲击物理领域的一个重大挑战,对于进一步了解晶格级别的基本物理以及验证冲击压缩的多尺度模型至关重要。在这里,我们在纳秒时间尺度上使用白光 X 射线劳埃衍射对激光冲击晶体中的应力松弛机制进行了首次原位观察。这些测量是在单晶铜上进行的,沿着[001]轴受到高达 50GPa 的峰值应力的冲击。结果表明,在特定的晶体学方向上存在与应力相关的晶格旋转。旋转的方向表明存在双滑移在共轭系统上。在这个模型中,旋转的幅度与密度约为 10^12cm^-2 的缺陷一致。

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