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Pressure-induced dissociation of water molecules in ice VII

机译:压力诱导的冰中水分子的离解VII

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摘要

The neutron diffraction pattern of D2O ice was recently measured at pressures up to 52 GPa by Guthrie et al., who proposed an octahedral interstitial model for ice at pressures above 13 GPa to account for the deviation of the observed crystal structure from that of ice VII. In this article, the octahedral interstitial model was re-examined in terms of the interstitial occupancy and X-ray Raman spectroscopy (XRS) spectra. The interstitial occupancy calculated using first-principles molecular dynamics simulations was negligibly small compared to that of the interstitial model. The oxygen K-edge spectra calculated for the interstitial model exhibited two additional low-energy peaks originating from water molecules and hydroxides that are interacting with interstitial protons, respectively, whereas these low-energy peaks were not observed in the experimentally measured spectra. These results suggest that the interstitial model cannot explain the XRS spectra of ice VII at pressures above 13 GPa and that more precise structure measurements and analyses are necessary to reveal the nature of the pressure-induced transition.
机译:Guthrie等人最近在高达52 GPa的压力下测量了D2O冰的中子衍射图,他提出了压力高于13 GPa的冰的八面体间隙模型,以解释观测到的晶体结构与冰VII的偏差。 。在本文中,根据间隙占用率和X射线拉曼光谱(XRS)光谱重新检查了八面体间隙模型。与间隙模型相比,使用第一性原理分子动力学模拟计算得出的间隙占用率可以忽略不计。为间隙模型计算的氧K边谱显示了两个额外的低能峰,分别来自与间隙质子相互作用的水分子和氢氧化物,而在实验测量的谱图中未观察到这些低能峰。这些结果表明,在高于13 GPa的压力下,间隙模型不能解释冰VII的XRS光谱,因此需要更精确的结构测量和分析来揭示压力诱发的跃迁的性质。

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