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Dynamical properties of liquid water from ab initio molecular dynamics performed in the complete basis set limit

机译:从头开始的分子动力学在完全基础集极限中执行的液态水动力学特性

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Dynamical properties of liquid water were studied using Car-Parrinello [Phys. Rev. Lett. 55, 2471 (1985)] ab initio molecular dynamics (AIMD) simulations within the Kohn-Sham (KS) density functional theory employing the Becke-Lee-Yang-Parr exchange-correlation functional for the electronic structure. The KS orbitals were expanded in a discrete variable representation basis set, wherein the complete basis set limit can be easily reached and which, therefore, provides complete convergence of ionic forces. In order to minimize possible nonergodic behavior of the simulated water system in a constant energy (NVE) ensemble, a long equilibration run (30 ps) preceded a 60 ps long production run. The temperature drift during the entire 60 ps trajectory was found to be minimal. The diffusion coefficient [0.055 A(2)/ps] obtained from the present work for 32 D2O molecules is a factor of 4 smaller than the most up to date experimental value, but significantly larger than those of other recent AIMD studies. Adjusting the experimental result so as to match the finite-sized system used in the present study brings the comparison between theory and experiment to within a factor of 3. More importantly, the system is not observed to become '' glassy '' as has been reported in previous AIMD studies. The computed infrared spectrum is in good agreement with experimental data, especially in the low frequency regime where the translational and librational motions of water are manifested. The long simulation length also made it possible to perform detailed studies of hydrogen bond dynamics. The relaxation dynamics of hydrogen bonds observed in the present AIMD simulation is slower than those of popular force fields, such as the TIP4P potential, but comparable to that of the TIP5P potential. (c) 2007 American Institute of Physics.
机译:使用Car-Parrinello [Phys。牧师55,2471(1985)]在Kohn-Sham(KS)密度泛函理论中,采用Becke-Lee-Yang-Parr交换相关函数进行电子结构的从头算分子动力学(AIMD)模拟。 KS轨道在离散的变量表示基集中进行了扩展,其中可以轻松达到完整的基集限制,因此可以提供离子力的完全收敛。为了在恒定能量(NVE)集成中最小化模拟水系统的可能的非遍历行为,在进行60 ps的长期生产之前,需要进行长时间的平衡(30 ps)。发现整个60 ps轨迹中的温度漂移最小。从目前的工作中获得的32种D2O分子的扩散系数[0.055 A(2)/ ps]比最新的实验值小4倍,但比其他最近AIMD研究的值大得多。调整实验结果以匹配本研究中使用的有限尺寸系统,可使理论与实验之间的比较在3倍之内。更重要的是,没有观察到该系统变得像“玻璃状”在以前的AIMD研究中报道。计算得出的红外光谱与实验数据非常吻合,特别是在低频状态下,水的平移和自由运动表现出来。较长的仿真长度也使进行氢键动力学的详细研究成为可能。在当前AIMD仿真中观察到的氢键弛豫动力学比流行力场(如TIP4P电势)要慢,但与TIP5P电势相当。 (c)2007年美国物理研究所。

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