The Abdus Salam International Centre for Theoretical Physics, Strada Costiera 11, 34151 Trieste, Italy.
Department of Chemistry and Centre for Scientific Computing, University of Warwick, Gibbet Hill Road, Coventry CV4 7AL, United Kingdom.
J Phys Chem B. 2020 Mar 19;124(11):2180-2190. doi: 10.1021/acs.jpcb.9b10144. Epub 2020 Mar 6.
The structural evolution of supercooled liquid water as we approach the glass transition temperature continues to be an active area of research. Here, we use molecular dynamics simulations of TIP4P/ice water to study the changes in the connected regions of empty space within the liquid, which we investigate using the Voronoi-voids network. We observe two important features: supercooling enhances the fraction of nonspherical voids and different sizes of voids tend to cluster forming a percolating network. By examining order parameters such as the local structure index (LSI), tetrahedrality and topological defects, we show that water molecules near large void clusters tend to be slightly more tetrahedral than those near small voids, with a lower population of under- and overcoordinated defects. We show further that the distribution of closed rings of water molecules around small and large void clusters maintain a balance between 6 and 7 membered rings. Our results highlight the changes of the dual voids and water network as a structural hallmark of supercooling and provide insights into the molecular origins of cooperative effects underlying density fluctuations on the subnanometer and nanometer length scale. In addition, the percolation of the voids and the hydrogen bond network around the voids may serve as useful order parameters to investigate density fluctuations in supercooled water.
当我们接近玻璃化转变温度时,过冷水液体的结构演化仍然是一个活跃的研究领域。在这里,我们使用 TIP4P/ice 水的分子动力学模拟来研究液体中空闲空间的连通区域的变化,我们使用 Voronoi-voids 网络来研究这些变化。我们观察到两个重要特征:过冷会增强非球形空隙的分数,并且不同大小的空隙倾向于聚集形成连通的网络。通过检查局部结构指数(LSI)、四面体和拓扑缺陷等顺序参数,我们表明,大空隙簇附近的水分子比小空隙附近的水分子略微更接近四面体,并且低配位数和高配位数缺陷的数量较少。我们进一步表明,小分子和大空隙簇周围水分子的封闭环的分布在 6 元和 7 元环之间保持平衡。我们的结果强调了双空隙和水网络的变化是过冷的结构特征,并提供了对亚纳米和纳米长度尺度上密度涨落的合作效应的分子起源的深入了解。此外,空隙的连通和空隙周围氢键网络的渗流可以作为研究过冷水密度涨落的有用的序参量。