In Situ Raman Study of Liquid Water at High Pressure

被引:9
|
作者
Romanenko, Alexandr V. [1 ,2 ]
Rashchenko, Sergey V. [1 ,2 ]
Goryainov, Sergey V. [1 ]
Likhacheva, Anna Yu [1 ]
Korsakov, Andrey V. [1 ]
机构
[1] RAS, SB, Sobolev Inst Geol & Mineral, 3 Koptyuga Ave, Novosibirsk 630090, Russia
[2] Novosibirsk State Univ, Novosibirsk, Russia
基金
俄罗斯科学基金会;
关键词
Water; H2O; high pressure; diamond anvil cell; Raman spectroscopy; liquid water structure; INTERNAL-PRESSURE; FLUID INCLUSIONS; SPECTRA; BANDS; KBAR; CELL;
D O I
10.1177/0003702817752487
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
A pressure shift of Raman band of liquid water (H2O) may be an important tool for measuring residual pressures in mineral inclusions, in situ barometry in high-pressure cells, and as an indicator of pressure-induced structural transitions in H2O. However, there was no consensus as to how the broad and asymmetric water Raman band should be quantitatively described, which has led to fundamental inconsistencies between reported data. In order to overcome this issue, we measured Raman spectra of H2O in situ up to 1.2GPa using a diamond anvil cell, and use them to test different approaches proposed for the description of the water Raman band. We found that the most physically meaningful description of water Raman band is the decomposition into a linear background and three Gaussian components, associated with differently H-bonded H2O molecules. Two of these components demonstrate a pronounced anomaly in pressure shift near 0.4GPa, supporting ideas of structural transition in H2O at this pressure. The most convenient approach for pressure calibration is the use of a linear background + one Gaussian decomposition (the pressure can be measured using the formula P (GPa)=-0.0317(3)(G) (cm(-1)), where (G) represents the difference between the position of water Raman band, fitted as a single Gaussian, in measured spectrum and spectrum at ambient pressure).
引用
收藏
页码:847 / 852
页数:6
相关论文
共 50 条
  • [21] Effect of high hydrostatic pressure and additives on the dynamics of water: A Raman spectroscopy study
    Cavaille, D
    Combes, D
    Zwick, A
    JOURNAL OF RAMAN SPECTROSCOPY, 1996, 27 (11) : 853 - 857
  • [22] A Raman study of ZnSe at high pressure
    Chou, WC
    Lin, CM
    Ro, RS
    Ho, CS
    Hong, DY
    Yang, CS
    Chuu, DS
    Yang, TJ
    Xu, J
    Huang, E
    CHINESE JOURNAL OF PHYSICS, 1997, 35 (03) : 266 - 273
  • [23] High pressure Raman study of LiBC
    Zhu, Pinwen
    Han, Dandan
    Tang, Ruilian
    Li, Nana
    Gao, Wei
    Wang, Xin
    PHYSICA STATUS SOLIDI B-BASIC SOLID STATE PHYSICS, 2011, 248 (05): : 1158 - 1161
  • [24] High pressure Raman study of isobutyramide
    Li, DongFei
    Liu, JiaRui
    Zhai, NaiCui
    Zhou, Mi
    Chen, YinQi
    SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 2024, 311
  • [25] Raman study of nitrogen at high pressure
    Chen, LC
    Wang, LJ
    Gu, HC
    Xu, LW
    Che, RZ
    Wang, JF
    CHINESE PHYSICS LETTERS, 1997, 14 (06) : 440 - 442
  • [26] Bilayer phosphorene under high pressure: in situ Raman spectroscopy
    Akhtar, Meysam
    Zhang, Congyan
    Rajapakse, Manthila
    Musa, Md Rajib Khan
    Yu, Ming
    Sumanasekera, Gamini
    Jasinski, Jacek B.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2019, 21 (14) : 7298 - 7304
  • [27] In Situ High-Pressure and Low-Temperature Study of Ammonia Borane by Raman Spectroscopy
    Liu, Ang
    Song, Yang
    JOURNAL OF PHYSICAL CHEMISTRY C, 2012, 116 (03): : 2123 - 2131
  • [28] Raman spectroscopic study of the liquid-liquid transition in water
    Ziemann, MA
    Schmidt, C
    Mirwald, PW
    LITHOS, 2004, 73 (1-2) : S125 - S125
  • [29] Theoretical study of the molecular motion of liquid water under high pressure
    Yamaguchi, T
    Chong, SH
    Hirata, F
    JOURNAL OF CHEMICAL PHYSICS, 2003, 119 (02): : 1021 - 1034