Elgabarty Hossam, Kühne Thomas D
Dynamics of Condensed Matter and Center for Sustainable Systems Design, Chair of Theoretical Chemistry, University of Paderborn, Warburger Str. 100, D-33098, Paderborn, Germany.
Phys Chem Chem Phys. 2020 May 21;22(19):10397-10411. doi: 10.1039/c9cp06960g. Epub 2020 Apr 7.
Ab initio molecular dynamics simulations of liquid water under equilibrium ambient conditions, together with a novel energy decomposition analysis, have recently shown that a substantial fraction of water molecules exhibit a significant asymmetry between the strengths of the two donor and/or the two acceptor interactions. We refer to this recently unraveled aspect as the "local asymmetry in the hydrogen bond network". We discuss how this novel aspect was first revealed, and provide metrics that can be consistently employed on simulated water trajectories to quantify this local heterogeneity in the hydrogen bond network and its dynamics. We then discuss the static aspects of the asymmetry, pertaining to the frozen geometry of liquid water at any given instant of time and the distribution of hydrogen bond strengths therein, and also its dynamic characteristics pertaining to how fast this asymmetry decays and the kinds of molecular motions responsible for this decay. Following this we discuss the spectroscopic manifestations of this asymmetry, from ultrafast X-ray absorption spectra to infrared spectroscopy and down to the much slower terahertz regime. Finally, we discuss the implications of these findings in a broad context and their relation to the current notions about the structure and dynamics of liquid water.
在平衡环境条件下对液态水进行的从头算分子动力学模拟,结合一种新颖的能量分解分析,最近表明相当一部分水分子在两个供体和/或两个受体相互作用的强度之间表现出显著的不对称性。我们将这个最近才揭示的方面称为“氢键网络中的局部不对称性”。我们讨论了这个新颖的方面是如何首次被揭示的,并提供了一些指标,这些指标可以在模拟的水轨迹上持续应用,以量化氢键网络中的这种局部异质性及其动力学。然后,我们讨论不对称性的静态方面,涉及液态水在任何给定时刻的冻结几何结构以及其中氢键强度的分布,还讨论其动态特征,即这种不对称性衰减的速度以及导致这种衰减的分子运动类型。在此之后,我们讨论这种不对称性的光谱表现,从超快X射线吸收光谱到红外光谱,再到慢得多的太赫兹波段。最后,我们在广泛的背景下讨论这些发现的意义以及它们与当前关于液态水结构和动力学概念的关系。