X-ray diffraction under non-hydrostatic conditions in experiments with diamond anvil cell: wustite (FeO) as an example

被引:22
|
作者
Dubrovinsky, L
Dubrovinskaia, N
Saxena, S
LiBehan, T
机构
[1] Uppsala Univ, Inst Earth Sci, Geocentrum, S-75236 Uppsala, Sweden
[2] European Synchrotron Radiat Facil, F-38043 Grenoble, France
关键词
X-ray diffraction; non-hydrostatic conditions; diamond anvil cell; wustite (FeO);
D O I
10.1016/S0921-5093(00)00856-X
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The stress state in a solid specimen compressed between two flat and parallel anvil faces (in a diamond anvil cell, for example) is non-hydrostatic. The resulting lattice strains, measured by X-ray diffraction, exhibit certain features, which are absent if truly hydrostatic conditions prevail. We describe the method of analysis of lattice strain in non-hydrostatic stress states. This is based on the transformation of stress axis into crystal axis and further on the calculations of the strain in a given direction by taking into account the pressure dependence of elastic moduli. Application of the theory is demonstrated with an example of a study of wustite (FeO) at pressures up to 18 GPa. We found that the pressure of phase transition is proportional to the uniaxial stress component, which rises from 10.1 GPa for compression without pressure medium to 15.4 GPa in Ar pressure medium. Extrapolation to zero stress conditions gives the value 16.8 GPa, which is in good agreement with the data of Fei (Y. Fei, in: M.D. Dyar, C. MacComman, M.W. Schaefer (Eds.), Mineral Spectroscopy, Geochemical Society, 1996 pp. 243-254) (powder diffraction data, compression in He pressure medium, P-tr = 17(1) GPa) and Shu (J. Shu, Eos Trans. Am. Geophys. Union 75 (1998) 203) (single crystal diffraction data, compression in He pressure medium, P-tr = 18(1) GPa). (C) 2000 Elsevier Science S.A. All rights reserved.
引用
收藏
页码:187 / 190
页数:4
相关论文
共 50 条
  • [41] Combined X-ray and neutron single-crystal diffraction in diamond anvil cells
    Grzechnik, Andrzej
    Meven, Martin
    Paulmann, Carsten
    Friese, Karen
    JOURNAL OF APPLIED CRYSTALLOGRAPHY, 2020, 53 : 9 - 14
  • [42] ENERGY DISPERSION AS A METHOD FOR X-RAY-DIFFRACTION UNDER HIGH-PRESSURE IN A DIAMOND ANVIL CELL
    HINZE, E
    WILL, G
    BURAS, B
    OLSEN, JS
    GERWARD, L
    ACTA CRYSTALLOGRAPHICA SECTION A, 1978, 34 : S343 - S343
  • [43] X-ray diffraction and laser heating: application of a moissanite anvil cell
    Hu, JZ
    Xu, J
    Somayazulu, M
    Guo, Q
    Hemley, R
    Mao, HK
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2002, 14 (44) : 10479 - 10481
  • [44] Real-time X-ray diffraction of montmorillonite dehydration and rehydration at pressure and temperature in a diamond anvil cell
    Bassett, WA
    Wu, TC
    SYNCHROTRON X-RAY METHODS IN CLAY SCIENCE, 1999, 9 : 220 - 239
  • [45] Analysis of plastic deformation with energy-dispersive X-ray diffraction: Application to deformation with a diamond anvil cell
    Otto, JW
    Vassiliou, JK
    EPDIC 5, PTS 1 AND 2, 1998, 278-2 : 329 - 334
  • [46] A novel diamond anvil cell for x-ray diffraction at cryogenic temperatures manufactured by 3D printing
    Jin, H.
    Woodall, C. H.
    Wang, X.
    Parsons, S.
    Kamenev, K. V.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2017, 88 (03):
  • [47] SIMPLE IMPROVEMENTS TO A DIAMOND-ANVIL HIGH-PRESSURE CELL FOR X-RAY DIFFRACTION STUDIES.
    Skelton, Earl F.
    Liu, Cheng-yin
    Spain, Ian L.
    High Temperatures - High Pressures, 1977, 9 (01) : 19 - 26
  • [48] A simple external resistance heating diamond anvil cell and its application for synchrotron radiation x-ray diffraction
    Fan, Dawei
    Zhou, Wenge
    Wei, Shuyi
    Liu, Yonggang
    Ma, Maining
    Xie, Hongsen
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2010, 81 (05):
  • [49] MHz free electron laser x-ray diffraction and modeling of pulsed laser heated diamond anvil cell
    Jaisle, Nicolas
    Cebron, David
    Konopkova, Zuzana
    Husband, Rachel J.
    Prescher, Clemens
    Cerantola, Valerio
    Dwivedi, Anand
    Kaa, Johannes M.
    Appel, Karen
    Buakor, Khachiwan
    Ball, Orianna B.
    Mcwilliams, Ryan S.
    Strohm, Cornelius
    Nakatsutsumi, Motoaki
    Zastrau, Ulf
    Baehtz, Carsten
    Anna Baron, Marzena
    Edmund, Eric
    Biswas, Joydipa
    Mchardy, James D.
    Sturtevant, Blake T.
    Ehm, Lars
    Goncharov, Alexander F.
    Mcmahon, Malcolm I.
    Buchen, Johannes
    Cynn, Hyunchae
    Pace, Edward J.
    Liermann, Hanns-Peter
    Sneed, Daniel T.
    Cooper, Samantha C.
    Anae, Madison
    Kim, Jaeyong
    Wu, Zhongyan
    Lee, Yongjae
    Hwang, Huijeong J.
    Kim, Taehyun
    Choi, Jinhyuk
    Lee, Jeongmin
    Merkel, Sebastien
    Chantel, Julien
    Koemets, Egor G.
    Marquardt, Hauke
    Prakapenka, Vitali B.
    Chariton, Stella
    Shevchenko, Elena
    Fiquet, Guillaume
    Rosa, Angelika D.
    Mezouar, Mohamed
    Garbarino, Gaston
    Morard, Guillaume
    JOURNAL OF APPLIED PHYSICS, 2023, 134 (09)
  • [50] A simulation study of induced failure and recrystallization of a perfect MgO crystal under non-hydrostatic compression: Application to melting in the diamond-anvil cell
    Belonoshko, AB
    Dubrovinsky, LS
    AMERICAN MINERALOGIST, 1997, 82 (5-6) : 441 - 451