High-pressure Raman spectroscopic studies of hydrous wadsleyite II

被引:6
|
作者
Kleppe, Annette K.
Jephcoat, Andrew P.
Smyth, Joseph R.
机构
[1] Univ Oxford, Dept Earth Sci, Oxford OX1 3PR, England
[2] Diamond Light Source, Didcot OX11 0QX, Oxon, England
[3] Univ Colorado, Dept Geol Sci, Boulder, CO 80309 USA
关键词
hydrous wadsleyite II; Raman spectroscopy; diamond-anvil cell; transition zone; high pressure;
D O I
10.2138/am.2006.2060
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Raman spectra in the range 80 to 4000 cm(-1) of wadsleyite II (Fo(90) with 2.0 wt% H2O and Fo(88) with 2.7 wt% H2O) have been measured in a diamond-anvil cell with solid rare-gas pressure-transmitting media to 51.4 GPa at room temperature. The ambient Raman spectrum of wadsleyite II is closely similar to wadsleyite modified with bands in frequency regions where the SiO4 tetrahedral and OH stretching vibrations of hydrous ringwoodite occur. The most intense, characteristic wadsleyite II modes at 709 and 911 cm(-1) (Si2O7 and SiO3 symmetric stretching vibrations, respectively) shift continuously to 51.4 GPa showing no evidence for a change in the crystal structure. A striking feature in the high-pressure Raman spectra of wadsleyite II is a significant growth in intensity in the mid-frequency range (300-650 cm(-1) at 10(-4) GPa and 400-750 cm(-1) at 51.4 GPa) under compression accompanied by the appearance of new Raman modes near 40 GPa, perhaps a result of resonance electronic Raman scattering. In the OH stretching frequency range, the Raman spectrum of wadsleyite II exhibits at least six modes and their high-pressure behavior agrees with that of Fo(90) hydrous wadsleyite: OH stretching modes above 3530 cm(-1) remain approximately constant up to at least 21.8 GPa whereas OH modes at frequencies <3530 cm(-1) decrease with increasing pressure. The OH stretching modes are consistent with protonation of the non-silicate oxygen O2 and the O atoms surrounding the partially vacant tetrahedral site Si2, as suggested from X-ray diffraction data.
引用
收藏
页码:1102 / 1109
页数:8
相关论文
共 50 条
  • [1] High-pressure Raman spectroscopic study of Fo90 hydrous wadsleyite
    Annette K. Kleppe
    Andrew P. Jephcoat
    Joseph R. Smyth
    Physics and Chemistry of Minerals, 2006, 32 : 700 - 709
  • [2] High-pressure Raman spectroscopic study of Fo90 hydrous wadsleyite
    Kleppe, AK
    Jephcoat, AP
    Smyth, JR
    PHYSICS AND CHEMISTRY OF MINERALS, 2006, 32 (10) : 700 - 709
  • [3] High-pressure and high-temperature Raman spectroscopic study of hydrous wadsleyite (β-Mg2SiO4)
    Yang, Xiaozhi
    Dubrovinsky, Leonid
    Manthilake, M. A. G. M.
    Wei, Qingguo
    PHYSICS AND CHEMISTRY OF MINERALS, 2012, 39 (01) : 57 - 64
  • [4] High-pressure and high-temperature Raman spectroscopic study of hydrous wadsleyite (β-Mg2SiO4)
    Xiaozhi Yang
    Leonid Dubrovinsky
    M. A. G. M. Manthilake
    Qingguo Wei
    Physics and Chemistry of Minerals, 2012, 39 : 57 - 64
  • [5] High-Pressure Raman and Infrared Spectroscopic Studies of Cesium Azide
    Li, Dongmei
    Zhu, Peifen
    Jiang, Junru
    Li, Miaoran
    Chen, Yanmei
    Liu, Bingbing
    Wang, Xiaoli
    Cui, Qiliang
    Zhu, Hongyang
    JOURNAL OF PHYSICAL CHEMISTRY C, 2016, 120 (47): : 27013 - 27018
  • [6] High-pressure measuring cell for Raman spectroscopic studies of natural gas
    Hansen, SB
    Berg, RW
    Stenby, EH
    APPLIED SPECTROSCOPY, 2001, 55 (01) : 55 - 60
  • [7] High-pressure Raman spectroscopic studies of FeS2 pyrite
    Kleppe, AK
    Jephcoat, AP
    MINERALOGICAL MAGAZINE, 2004, 68 (03) : 433 - 441
  • [8] Plastic deformation of wadsleyite: II. High-pressure deformation in shear
    Thurel, E
    Cordier, P
    Frost, D
    Karato, SI
    PHYSICS AND CHEMISTRY OF MINERALS, 2003, 30 (05) : 267 - 270
  • [9] Plastic deformation of wadsleyite: II. High-pressure deformation in shear
    E. Thurel
    P. Cordier
    D. Frost
    S.-I. Karato
    Physics and Chemistry of Minerals, 2003, 30 : 267 - 270
  • [10] High-pressure Raman spectroscopic study of chondrodite
    C.-C. Lin
    L.-g. Liu
    T. Irifune
    Physics and Chemistry of Minerals, 1999, 26 : 226 - 233