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High-pressure Raman scattering and x-ray diffraction studies of the supercritical fluid of hydrogen

机译:高压拉曼散射和氢气超临界流体的X射线衍射研究

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The high-pressure properties of the supercritical fluid H_2 have been investigated in the Raman scattering and synchrotron radiation x-ray diffraction experiments at room temperature. The pressure dependence of four vibrational modes, i.e., Q_1(0), Q_1(1), Q_1(2), and Q_1(3), and four rotational modes, i.e., S_0(0), S_0(1), S_0(2), and S_0(3), were precisely obtained, and three rotational constants under pressure, i.e., B_0, D_0, and H_0, were estimated from theoretical formulas. A peculiar change in the pressure dependence of the Raman spectra was observed at 1-2 GPa. Through x-ray experiments, halo patterns were collected within a wide pressure range of 0.1-5 GPa, and the molar volume at each pressure was estimated from the d-value of the halo peak. The obtained pressure-volume relation suggested that the fluid H2 showed a change in compressibility at around 1 GPa and became incompressible above this pressure because the repulsive term of the intermolecular potential became dominant. The dependence followed the relational expression of P ~ V_m~(-3.11) above 1 GPa, whereas fluid O_2 and N_2 of the same homonuclear diatomic molecule followed the relational expression of P ~ V_m~(-4.32) above 0.2 GPa. It was found that the fluid H_2 behaves differently from fluid O_2 and N_2 and is more easily compressed than those. The behavior of V_m was significantly correlated with the pressure dependence of the Raman spectra, and the peculiar change of the Raman spectra has been attributed to the enhancement of the intermolecular interaction due to the transfer to the solid-like pressure-volume relation.
机译:已经在室温下在拉曼散射和同步辐射X射线衍射实验中研究了超临界流体H_2的高压性能。四个振动模式的压力依赖性,即Q_1(0),Q_1(1),Q_1(2)和Q_1(3),以及四种旋转模式,即S_0(0),S_0(1),S_0( 2)和S_0(3)精确地获得,并且从理论公式估计了三种压力下的旋转常数,即B_0,D_0和H_0。在1-2GPa观察到拉曼光谱的压力依赖性的特殊变化。通过X射线实验,在0.1-5GPa的宽压力范围内收集卤素图案,并从卤素峰的D值估计每个压力下的摩尔体积。所获得的压力体积关系表明,流体H2显示出约1GPa约为1GPa的可压缩性的变化,并且由于分子间潜力的排斥项变得显着,因此在该压力之上变得不可压缩。依赖性遵循高于1GPa的P〜V_m〜(-3.11)的关系表达,而相同的同核硅藻分子的流体O_2和N_2之后遵循0.2GPa以上的P〜V_m〜(-4.32)的关系表达。发现流体H_2与流体O_2和N_2不同,并且比那些更容易压缩。 V_M的行为与拉曼光谱的压力依赖性显着相关,并且拉曼光谱的特殊变化归因于由于转移到固体压力 - 体积关系而增强分子间相互作用。

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  • 来源
    《Journal of Applied Physics 》 |2020年第13期| 135901.1-135901.8| 共8页
  • 作者单位

    Graduate School of Material Science University of Hyogo 3-2-1 Kamigohri Hyogo 678-1297 Japan;

    Graduate School of Material Science University of Hyogo 3-2-1 Kamigohri Hyogo 678-1297 Japan;

    National Institute for Materials Science (NIMS) 1-1 Namiki Tsukuba Ibaraki 305-0044 Japan;

    Japan Synchrotron Radiation Research Institute (JASRI) 1-1-1 Kouto Sayo-cho Sayo-gun Hyogo 679-5198 Japan;

    Japan Synchrotron Radiation Research Institute (JASRI) 1-1-1 Kouto Sayo-cho Sayo-gun Hyogo 679-5198 Japan;

    Japan Synchrotron Radiation Research Institute (JASRI) 1-1-1 Kouto Sayo-cho Sayo-gun Hyogo 679-5198 Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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