论文标题

二维分区的方冰限制在石墨烯/石墨纳米毛细管中

Two-dimensional partitioned square ice confined in graphene/graphite nanocapillaries

论文作者

Zeng, Zhen, Wang, Tianyou, Chen, Rui, Suo, Mengshan, Sun, Kai, Theodorakis, Panagiotis E., Che, Zhizhao

论文摘要

作为最迷人的封闭水/冰现象之一,近年来已经对二维方形冰进行了广泛的研究和实验证实。除了先前研究中考虑的单向均匀方糖结结式模式外,本研究中还发现了多方向隔离的方形结冰模式,并以分子动力学(MD)模拟为特征。提出了方形糖霜参数,以定量地将分区模式与均质图案和液态水区分开。在这项研究中,石墨烯单层n的数量有所不同,结果表明,当水分子限制在石墨片(N> = 2)之间时,它在构成分区的方形结冰模式上更有利于(n = 1)。由于水分子与碳底物之间相互作用的短距离性质,这种现象对n不敏感。此外,即使在n> = 2的n> = 2中,形成单层水分子的分区平方糖霜模式也是不利的,这证明了水分子层之间的相互作用是形成分区结构的另一个主要因素。通过改变压力和温度来研究从分区结构到均匀方形图案的转化。基于全面的MD仿真,本研究揭示了分区的正方形结冰模式的形成机理。

As one of the most fascinating confined water/ice phenomena, two-dimensional square ice has been extensively studied and experimentally confirmed in recent years. Apart from the unidirectional homogeneous square icing patterns considered in previous studies, the multidirectional partitioned square icing patterns are discovered in this study and characterized by molecular dynamics (MD) simulations. Square icing parameters are proposed to quantitatively distinguish the partitioned patterns from the homogeneous patterns and the liquid water. The number of graphene monolayers n is varied in this study, and the results show that it is more energetically favorable to form partitioned square icing patterns when the water molecules are confined between graphite sheets (n >= 2) compared to graphene (n = 1). This phenomenon is insensitive to n as long as n >= 2, because of the short-range nature of the interaction between water molecules and the carbon substrate. Moreover, it is energetically unfavorable to form partitioned square icing patterns for a single layer of water molecules even for n >= 2, verifying that the interaction between layers of water molecules is another dominant factor in the formation of partitioned structures. The conversion from partitioned structure to homogenous square patterns is investigated by changing the pressure and the temperature. Based on the comprehensive MD simulations, this study unveils the formation mechanism of the partitioned square icing patterns.

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