Geochemical Research Center, Graduate School of Science, The University of Tokyo, Bunkyo-ku 113-0033, Japan.
Institut de Minéralogie, de Physique des Matériaux et de Cosmochimie, CNRS UMR 7590, Sorbonne Université, Muséum National d'Histoire Naturelle, F-75252 Paris, France.
Proc Natl Acad Sci U S A. 2022 Oct 4;119(40):e2208717119. doi: 10.1073/pnas.2208717119. Epub 2022 Sep 26.
Ice polymorphs show extraordinary structural diversity depending on pressure and temperature. The behavior of hydrogen-bond disorder not only is a key ingredient for their structural diversity but also controls their physical properties. However, it has been a challenge to determine the details of the disordered structure in ice polymorphs under pressure, because of the limited observable reciprocal space and inaccuracies related to high-pressure techniques. Here, we present an elucidation of the disordered structure of ice VII, the dominant high-pressure form of water, at 2.2 GPa and 298 K, from both single-crystal and powder neutron-diffraction techniques. We reveal the three-dimensional atomic distributions from the maximum entropy method and unexpectedly find a ring-like distribution of hydrogen in contrast to the commonly accepted discrete sites. In addition, total scattering analysis at 274 K clarified the difference in the intermolecular structure from ice VIII, the ordered counterpart of ice VII, despite an identical molecular geometry. Our complementary structure analyses robustly demonstrate the unique disordered structure of ice VII. Furthermore, these findings are related to proton dynamics, which drastically vary with pressure, and will contribute to an understanding of the structural origin of anomalous physical properties of ice VII under pressures.
冰的多晶型体表现出显著的结构多样性,取决于压力和温度。氢键无序的行为不仅是其结构多样性的关键组成部分,而且控制着它们的物理性质。然而,由于可观测的倒易空间有限以及与高压技术相关的不准确性,确定冰多晶型体在压力下的无序结构的细节一直是一个挑战。在这里,我们通过单晶和粉末中子衍射技术,对水的主要高压形式冰 VII 在 2.2 GPa 和 298 K 下的无序结构进行了阐明。我们从最大熵方法中揭示了三维原子分布,出人意料地发现了氢键的环状分布,而不是通常接受的离散位置。此外,在 274 K 下的全散射分析澄清了冰 VIII(冰 VII 的有序对应物)的分子间结构与冰 VII 的差异,尽管分子几何形状相同。我们的互补结构分析有力地证明了冰 VII 的独特无序结构。此外,这些发现与质子动力学有关,质子动力学随着压力的变化而剧烈变化,这将有助于理解冰 VII 在压力下异常物理性质的结构起源。