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一种用于在高压下对液体和非晶态固体进行高能X射线衍射的穿孔金刚石砧盒。

A perforated diamond anvil cell for high-energy x-ray diffraction of liquids and amorphous solids at high pressure.

作者信息

Soignard Emmanuel, Benmore Chris J, Yarger Jeffery L

机构信息

LeRoy Eyring Center for Solid State Science, Arizona State University, Tempe, Arizona 85287, USA.

出版信息

Rev Sci Instrum. 2010 Mar;81(3):035110. doi: 10.1063/1.3356977.

Abstract

Diamond anvil cells (DACs) are widely used for the study of materials at high pressure. The typical diamonds used are between 1 and 3 mm thick, while the sample contained within the opposing diamonds is often just a few microns in thickness. Hence, any absorbance or scattering from diamond can cause a significant background or interference when probing a sample in a DAC. By perforating the diamond to within 50-100 microm of the sample, the amount of diamond and the resulting background or interference can be dramatically reduced. The DAC presented in this article is designed to study amorphous materials at high pressure using high-energy x-ray scattering (>60 keV) using laser-perforated diamonds. A small diameter perforation maintains structural integrity and has allowed us to reach pressures >50 GPa, while dramatically decreasing the intensity of the x-ray diffraction background (primarily Compton scattering) when compared to studies using solid diamonds. This cell design allows us for the first time measurement of x-ray scattering from light (low Z) amorphous materials. Here, we present data for two examples using the described DAC with one and two perforated diamond geometries for the high-pressure structural studies of SiO(2) glass and B(2)O(3) glass.

摘要

金刚石对顶砧池(DACs)被广泛用于高压下材料的研究。所使用的典型金刚石厚度在1至3毫米之间,而相对的金刚石之间所包含的样品厚度通常只有几微米。因此,在对DAC中的样品进行探测时,来自金刚石的任何吸光度或散射都会造成显著的背景或干扰。通过将金刚石穿孔至距离样品50 - 100微米以内,可以大幅减少金刚石的量以及由此产生的背景或干扰。本文介绍的DAC旨在使用激光穿孔的金刚石,通过高能X射线散射(>60 keV)对高压下的非晶材料进行研究。小直径穿孔保持了结构完整性,使我们能够达到>50 GPa的压力,同时与使用实心金刚石的研究相比,显著降低了X射线衍射背景(主要是康普顿散射)的强度。这种池设计首次使我们能够测量来自轻质(低Z)非晶材料的X射线散射。在此,我们展示了使用所描述的DAC的两个示例的数据,分别采用一种和两种穿孔金刚石几何结构用于SiO₂玻璃和B₂O₃玻璃的高压结构研究。

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