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Coherent diffraction imaging of nanoscale strain evolution in a single crystal under high pressure

机译:高压下单晶纳米尺度应变演化的相干衍射成像

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摘要

The evolution of morphology and internal strain under high pressure fundamentally alters the physical property, structural stability, phase transition and deformation mechanism of materials. Until now, only averaged strain distributions have been studied. Bragg coherent X-ray diffraction imaging is highly sensitive to the internal strain distribution of individual crystals but requires coherent illumination, which can be compromised by the complex high-pressure sample environment. Here we report the successful de-convolution of these effects with the recently developed mutual coherent function method to reveal the three-dimensional strain distribution inside a 400 nm gold single crystal during compression within a diamond-anvil cell. The three-dimensional morphology and evolution of the strain under pressures up to 6.4 GPa were obtained with better than 30 nm spatial resolution. In addition to providing a new approach for high-pressure nanotechnology and rheology studies, we draw fundamental conclusions about the origin of the anomalous compressibility of nanocrystals.
机译:高压下的形貌和内部应变的演变从根本上改变了材料的物理性质,结构稳定性,相变和变形机理。到目前为止,仅研究了平均应变分布。布拉格相干X射线衍射成像对单个晶体的内部应变分布高度敏感,但需要相干照明,这可能会因复杂的高压样品环境而受到损害。在这里,我们用最近开发的互相关函数方法报告了这些效应的成功反卷积,以揭示在金刚石-砧座单元压缩过程中400 nm金单晶内部的三维应变分布。获得了在高达6.4 GPa的压力下应变的三维形态和演化,其空间分辨率优于30 nm。除了为高压纳米技术和流变学研究提供新方法外,我们还得出有关纳米晶体异常可压缩性起源的基本结论。

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