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单壁碳纳米管内TIP4P/ICE水的冻结温度、冰纳米管结构和质子有序化

Freezing Temperatures, Ice Nanotubes Structures, and Proton Ordering of TIP4P/ICE Water inside Single Wall Carbon Nanotubes.

作者信息

Pugliese P, Conde M M, Rovere M, Gallo P

机构信息

Dipartimento di Matematica e Fisica, Università Roma Tre , Via della Vasca Navale 84, 00146 Roma, Italy.

出版信息

J Phys Chem B. 2017 Nov 16;121(45):10371-10381. doi: 10.1021/acs.jpcb.7b06306. Epub 2017 Nov 2.

Abstract

A very recent experimental paper importantly and unexpectedly showed that water in carbon nanotubes is already in the solid ordered phase at the temperature where bulk water boils. The water models used so far in literature for molecular dynamics simulations in carbon nanotubes show freezing temperatures lower than the experiments. We present here results from molecular dynamics simulations of water inside single walled carbon nanotubes using an extremely realistic model for both liquid and icy water, the TIP4P/ICE. The water behavior inside nanotubes of different diameters has been studied upon cooling along the isobars at ambient pressure starting from temperatures where water is in a liquid state. We studied the liquid/solid transition, and we observed freezing temperatures higher than in bulk water and that depend on the diameter of the nanotube. The maximum freezing temperature found is 390 K, which is in remarkable agreement with the recent experimental measurements. We have also analyzed the ice structure called "ice nanotube" that water forms inside the single walled carbon nanotubes when it freezes. The ice forms observed are in agreement with previous results obtained with different water models. A novel finding, a partial proton ordering, is evidenced in our ice nanotubes at finite temperature.

摘要

最近的一篇实验论文得出了重要且出人意料的结果

在本体水沸腾的温度下,碳纳米管中的水已处于固态有序相。迄今为止,文献中用于碳纳米管分子动力学模拟的水模型显示的冻结温度低于实验值。我们在此展示了使用针对液态水和冰态水都极为逼真的TIP4P/ICE模型对单壁碳纳米管内的水进行分子动力学模拟的结果。从水处于液态的温度开始,在环境压力下沿等压线冷却,研究了不同直径纳米管内水的行为。我们研究了液/固转变,观察到冻结温度高于本体水,且取决于纳米管的直径。发现的最高冻结温度为390K,这与最近的实验测量结果非常吻合。我们还分析了水在单壁碳纳米管内冻结时形成的名为“冰纳米管”的冰结构。观察到的冰的形成与使用不同水模型获得的先前结果一致。在我们的冰纳米管中,在有限温度下发现了一个新现象,即部分质子有序排列。

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