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Classical and quantum ordering of protons in cold solid hydrogen under megabar pressures

机译:兆巴压力下冷固体氢中质子的经典和量子有序

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A combination of state-of-the-art theoretical methods has been used to obtain an atomic-level picture of classical and quantum ordering of protons in cold high-pressure solid hydrogen. We focus mostly on phases II and III of hydrogen, exploring the effects of quantum nuclear motion on certain features of these phases (through a number of ab initio path integral molecular dynamics (PIMD) simulations at particular points on the phase diagram). We also examine the importance of van der Waals forces in this system by performing calculations using the optB88-vdW density functional, which accounts for non-local correlations. Our calculations reveal that the transition between phases I and II is strongly quantum in nature, resulting from a competition between anisotropic inter-molecular interactions that restrict molecular rotation and thermal plus quantum fluctuations of the nuclear positions that facilitate it. The transition from phase II to III is more classical because quantum nuclear motion plays only a secondary role and the transition is determined primarily by the underlying potential energy surface. A structure of P2_(1/c) symmetry with 24 atoms in the primitive unit cell is found to be stable when anharmonic quantum nuclear vibrational motion is included at finite temperatures using the PIMD method. This structure gives a good account of the infra-red and Raman vibron frequencies of phase II. We find additional support for a C2/c structure as a strong candidate for phase III, since it remains transparent up to 300 GPa, even when quantum nuclear effects are included. Finally, we find that accounting for van der Waals forces improves the agreement between experiment and theory for the parts of the phase diagram considered, when compared to previous work which employed the widely-used Perdew-Burke-Ernzerhof exchange-correlation functional.
机译:结合了最新的理论方法,获得了冷高压固体氢中质子的经典和量子有序的原子级图像。我们主要关注氢的第二阶段和第三阶段,探索量子核运动对这些阶段某些特征的影响(通过在相图特定点上的许多从头算路径积分分子动力学(PIMD)模拟)。我们还通过使用optB88-vdW密度函数执行计算来检查范德华力在该系统中的重要性,该函数考虑了非局部相关性。我们的计算表明,由于限制分子旋转的各向异性分子间相互作用与促进分子旋转的核位置的热加量子涨落之间的竞争,I和II相之间的跃迁本质上是强量子的。从第二阶段到第三阶段的过渡更为经典,因为量子核运动仅扮演次要角色,并且该过渡主要由潜在的势能面决定。当使用PIMD方法在有限的温度下包括非调和量子核振动运动时,在原始晶胞中具有24个原子的P2_(1 / c)对称结构被发现是稳定的。这种结构很好地说明了II期的红外和拉曼振动子频率。我们发现C2 / c结构作为III期的强有力候选者的其他支持,因为即使包括量子核效应,它在高达300 GPa的压力下仍保持透明。最后,我们发现,与以前使用广泛使用的Perdew-Burke-Ernzerhof交换相关函数的工作相比,考虑范德华力可以改善实验和理论之间所考虑相图各部分的一致性。

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