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Development of High-Pressure Multigrain X-Ray Diffraction for Exploring the Earth's Interior

机译:用于探索地球内部的高压多颗粒X射线衍射的开发

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摘要

The lower mantle makes up more than a half of our planet's volume.Mineralogical and petrological experiments on realistic bulk compositions under high pressure-temperature (P-T) conditions are essential for understanding deep mantle processes.Such high P-T experiments are commonly conducted in a laser-heated diamond anvil cell,producing a multiphase assemblage consisting of 100 nm to submicron crystallite grains.The structures of these lower mantle phases often cannot be preserved upon pressure quenching;thus,in situ characterization is needed.The X-ray diffraction (XRD) pattern of such a multiphase assemblage usually displays a mixture of diffraction spots and rings as a result of the coarse grain size relative to the small X-ray beam size (3-5 μm) available at the synchrotron facilities.Severe peak overlapping from multiple phases renders the powder XRD method inadequate for indexing new phases and minor phases.Consequently,structure determination of new phases in a high P-T multiphase assemblage has been extremely difficult using conventional XRD techniques.Our recent development of multigrain XRD in high-pressure research has enabled the indexation of hundreds of individual crystallite grains simultaneously through the determination of crystallographic orientations for these individual grains.Once indexation is achieved,each grain can be treated as a single crystal.The combined crystallographic information from individual grains can be used to determine the crystal structures of new phases and minor phases simultaneously in a multiphase system.With this new development,we have opened up a new area of crystallography under the high P-T conditions of the deep lower mantle.This paper explains key challenges in studying multiphase systems and demonstrates the unique capabilities of high-pressure multigrain XRD through successful examples of its applications.
机译:下地幔占地球总体积的一半以上。在高压-高温(PT)条件下进行实际块体组成的矿物学和岩石学实验对于了解深地幔过程至关重要。此类高PT实验通常在激光-加热的金刚石砧室,产生由100 nm到亚微米晶粒组成的多相组件。在压力淬火后,这些下地幔相的结构通常无法保留;因此,需要进行原位表征。X射线衍射(XRD)模式相对于同步加速器上可用的小X射线束尺寸(3-5μm)而言,相对于较小的晶粒尺寸而言,这种多相组合的s通常显示出衍射斑点和环的混合物。粉末XRD方法不足以索引新相和次要相。因此,高PT多相中新相的结构确定使用传统的XRD技术很难对它们进行组装。我们最近在高压研究中开发的多颗粒XRD技术使得能够通过确定单个晶粒的晶体取向同时对数百个单个晶粒进行分度。一旦实现了分度,每个可以将晶粒视为单晶。来自单个晶粒的组合晶体学信息可用于同时确定多相系统中新相和次相的晶体结构。随着这一新发展,我们开辟了一个新的晶体学领域本文解释了研究多相系统的关键挑战,并通过成功的应用实例展示了高压多颗粒XRD的独特功能。

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  • 来源
    《工程(英文)》 |2019年第003期|441-447|共7页
  • 作者单位

    Center for High Pressure Science and Technology Advanced Research(HPSTAR), Shanghai 201203, China;

    Center for High Pressure Science and Technology Advanced Research(HPSTAR), Shanghai 201203, China;

    HPCAT, X-Ray Science Division, Argonne National Laboratory, Argonne, IL 60439, USA;

    Center for High Pressure Science and Technology Advanced Research(HPSTAR), Shanghai 201203, China;

    Geophysical Laboratory, Carnegie Institution of Washington, Washington, DC 20015, USA;

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