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高压低温下冰的相变。

Phase Transition of Ice at High Pressures and Low Temperatures.

机构信息

Shanghai Engineering Research Center of Molecular Therapeutics and New Drug Development, School of Chemistry and Molecular Engineering, East China Normal University, Shanghai 200062, China.

National Key Laboratory of Science and Technology on Micro/Nano Fabrication, Key laboratory for Thin Film and Microfabrication of the Ministry of Education, Department of Micro/Nano-electronics, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

Molecules. 2020 Jan 23;25(3):486. doi: 10.3390/molecules25030486.

Abstract

The behavior of ice under extreme conditions undergoes the change of intermolecular binding patterns and leads to the structural phase transitions, which are needed for modeling the convection and internal structure of the giant planets and moons of the solar system as well as H2O-rich exoplanets. Such extreme conditions limit the structural explorations in laboratory but open a door for the theoretical study. The ice phases IX and XIII are located in the high pressure and low temperature region of the phase diagram. However, to the best of our knowledge, the phase transition boundary between these two phases is still not clear. In this work, based on the second-order Møller-Plesset perturbation (MP2) theory, we theoretically investigate the ice phases IX and XIII and predict their structures, vibrational spectra and Gibbs free energies at various extreme conditions, and for the first time confirm that the phase transition from ice IX to XIII can occur around 0.30 GPa and 154 K. The proposed work, taking into account the many-body electrostatic effect and the dispersion interactions from the first principles, opens up the possibility of completing the ice phase diagram and provides an efficient method to explore new phases of molecular crystals.

摘要

在极端条件下,冰的行为经历了分子间结合模式的变化,导致了结构相变,这对于模拟太阳系巨行星和卫星以及富含 H2O 的系外行星的对流和内部结构是必要的。这些极端条件限制了实验室中的结构探索,但为理论研究开辟了一扇门。冰相 IX 和 XIII 位于相图的高压低温区域。然而,据我们所知,这两种相之间的相变边界仍然不清楚。在这项工作中,我们基于二阶 Møller-Plesset 微扰(MP2)理论,从理论上研究了冰相 IX 和 XIII,并预测了它们在各种极端条件下的结构、振动光谱和吉布斯自由能,首次证实了冰相 IX 到 XIII 的相变可以在大约 0.30 GPa 和 154 K 左右发生。这项考虑了多体静电效应和基于第一性原理的色散相互作用的工作,为完成冰相图提供了可能性,并为探索分子晶体的新相提供了一种有效的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b82/7037513/49ff4bda949e/molecules-25-00486-g001.jpg

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