Effective hydrostatic limits of pressure media for high-pressure crystallographic studies

被引:442
|
作者
Angel, Ross J. [1 ]
Bujak, Maciej
Zhao, Jing
Gatta, G. Diego
Jacobsen, Steven D.
机构
[1] Virginia Tech, Dept Geosci, Crystallog Lab, Blacksburg, VA 24060 USA
[2] Univ Opole, Inst Chem, PL-45052 Opole, Poland
[3] Univ Milan, Dipartimento Sci Terra, I-20133 Milan, Italy
[4] Northwestern Univ, Dept Earth & Planetary Sci, Evanston, IL 60208 USA
关键词
D O I
10.1107/S0021889806045523
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The behavior of a number of commonly used pressure media, including nitrogen, argon, 2-propanol, a 4: 1 methanol-ethanol mixture, glycerol and various grades of silicone oil, has been examined by measuring the X-ray diffraction maxima from quartz single crystals loaded in a diamond-anvil cell with each of these pressure media in turn. In all cases, the onset of non-hydrostatic stresses within the medium is detectable as the broadening of the rocking curves of X-ray diffraction peaks from the single crystals. The onset of broadening of the rocking curves of quartz is detected at similar to 9.8 GPa in a 4: 1 mixture of methanol and ethanol and at similar to 4.2 GPa in 2-propanol, essentially at the same pressures as the previously reported hydrostatic limits determined by other techniques. Gigahertz ultrasonic interferometry was also used to detect the onset of the glass transition in 4: 1 methanol-ethanol and 16: 3: 1 methanol-ethanol-water, which were observed to support shear waves above similar to 9.2 and similar to 10.5 GPa, respectively, at 0.8-1.2 GHz. By contrast, peak broadening is first detected at similar to 3 GPa in nitrogen, similar to 1.9 GPa in argon, similar to 1.4 GPa in glycerol and similar to 0.9 GPa in various grades of silicone oil. These pressures, which are significantly lower than hydrostatic limits quoted in the literature, should be considered as the practical maximum limits to the hydrostatic behavior of these pressure media at room temperature.
引用
收藏
页码:26 / 32
页数:7
相关论文
共 50 条
  • [21] A reliable valve for application in high-pressure hydrostatic installations
    Stishov, SM
    INSTRUMENTS AND EXPERIMENTAL TECHNIQUES, 2002, 45 (06) : 846 - 847
  • [22] HYDROSTATIC SEAL ENABLES HIGH-PRESSURE FLUID TRANSFER
    YEAPLE, F
    DESIGN NEWS, 1985, 41 (05) : 110 - 111
  • [23] DIFFUSION OF HYDROGEN IN NIOBIUM UNDER HYDROSTATIC HIGH-PRESSURE
    PUSCH, A
    FENZL, W
    PEISL, J
    ZEITSCHRIFT FUR PHYSIKALISCHE CHEMIE NEUE FOLGE, 1989, 163 : 497 - 502
  • [24] DIFFUSION OF HYDROGEN IN NIOBIUM UNDER HYDROSTATIC HIGH-PRESSURE
    PUSCH, A
    FENZL, W
    PEISL, J
    JOURNAL OF THE LESS-COMMON METALS, 1987, 129 : 305 - 309
  • [25] PASTEURIZATION OF FOOD BY HYDROSTATIC HIGH-PRESSURE - CHEMICAL ASPECTS
    TAUSCHER, B
    ZEITSCHRIFT FUR LEBENSMITTEL-UNTERSUCHUNG UND-FORSCHUNG, 1995, 200 (01): : 3 - 13
  • [26] High-pressure crystallographic experiments with a CCD-detector
    Budzianowski, A
    Katrusiak, A
    HIGH-PRESSURE CRYSTALLOGRAPHY, 2004, 140 : 101 - 112
  • [27] CAPABILITIES AND LIMITS OF HIGH-PRESSURE LIQUID CHROMATOGRAPHY
    ENGELHARDT, H
    ERDOL & KOHLE ERDGAS PETROCHEMIE, 1977, 30 (09): : 405 - 411
  • [28] Application and possible benefits of high hydrostatic pressure or high-pressure homogenization on beer processing: A review
    Santos, Ligia M. R.
    Oliveira, Fabiano A.
    Ferreira, Elisa H. R.
    Rosenthal, Amauri
    FOOD SCIENCE AND TECHNOLOGY INTERNATIONAL, 2017, 23 (07) : 561 - 581
  • [29] Effective pressure and treatment duration of high hydrostatic pressure to prepare melanoma vaccines
    Liu, Kai
    Yan, Shuai
    Ma, Zhanchuan
    Liu, Bin
    ONCOLOGY LETTERS, 2020, 20 (02) : 1135 - 1142
  • [30] Impact of Hydrostatic Pressure on an Intrinsically Disordered Protein: A High-Pressure NMR Study of α-Synuclein
    Roche, Julien
    Ying, Jinfa
    Maltsev, Alexander S.
    Bax, Ad
    CHEMBIOCHEM, 2013, 14 (14) : 1754 - 1761