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冰中压力的分散相互作用和振动效应:一项第一性原理研究。

Dispersion interactions and vibrational effects in ice as a function of pressure: a first principles study.

机构信息

Department of Chemistry, University of California, Davis, California 95616, USA.

出版信息

Phys Rev Lett. 2012 Mar 9;108(10):105502. doi: 10.1103/PhysRevLett.108.105502. Epub 2012 Mar 5.

Abstract

We present a first principles theoretical framework that accurately accounts for several properties of ice, over a wide pressure range. In particular, we show that, by using a recently developed nonlocal van der Waals functional and by taking into account hydrogen zero point motion, one can properly describe the zero temperature equation of state, the vibrational spectra, and the dielectric properties of ice at low pressure and of ice VIII, a stable phase between 2 and 60 GPa. While semilocal density functionals yield a transition pressure from ice XI to VIII that is overestimated by almost an order of magnitude, we find good agreement with experiments when dispersion forces are taken into account. Zero point energy contributions do not alter the computed transition pressure, but they affect structural properties, including equilibrium volumes and bulk moduli.

摘要

我们提出了一个第一性原理理论框架,能够在较宽的压力范围内准确描述冰的多种性质。特别是,我们表明,通过使用最近开发的非局部范德华泛函,并考虑氢的零点运动,可以正确描述零温状态方程、振动谱和低压冰以及 2 到 60 GPa 之间稳定相冰 VIII 的介电性质。虽然半局部密度泛函给出的冰 XI 到 VIII 的转变压力高估了近一个数量级,但当考虑色散力时,我们发现与实验结果吻合较好。零点能贡献不会改变计算得到的转变压力,但会影响结构性质,包括平衡体积和体弹模量。

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