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静电场对液态水及其结构、动力学和氢键不对称性的影响:基于TIP4P/2005水模型的分子动力学模拟研究

Effect of static electric fields on liquid water, its structure, dynamics, and hydrogen bond asymmetry: A molecular dynamics simulation study of TIP4P/2005 water model.

作者信息

Prasad Mahabir, English Niall J, Chakraborty Somendra Nath

机构信息

Department of Chemistry, Sikkim University, Gangtok, Sikkim 737102, India.

School of Chemical and Bioprocess Engineering, University College Dublin, Belfield Dublin 4, Ireland.

出版信息

J Chem Phys. 2023 Aug 7;159(5). doi: 10.1063/5.0153851.

Abstract

We study the effect of static electric fields of 0.1, 0.4, and 1.0 V/nm on the hydrogen bond structure and dynamics of TIP4P/2005 water at 1 bar and at temperatures between 300 and 200 K using molecular dynamics simulations. At all these temperatures, simulating liquid water with electric fields of 0.1 and 0.4 V/nm has no additional effect on its structural and dynamical changes, which otherwise already take place due to cooling. However, the introduction of 1.0 V/nm field enhances the slowing down of liquid water dynamics, crystallizes it to cubic ice at 240 and 220 K, and amorphizes it at 200 K. At 240 and 220 K, crystallization occurs within 5 and 50 ns, respectively. An electric field of 1 V/nm increases the relaxation times in addition to what cooling does. We note that when liquid water's metastability limit is reached, crystallization is averted and amorphization takes place. Both equilibrium (liquid-solid) and non-equilibrium (liquid-amorphous) transformations are observed at 1 V/nm. Moreover, with an increase in the electric field, H-bonds become stronger. However, the donor-acceptor asymmetry (the difference between the strengths of two donor/acceptor bonds) remains even when crystallization or amorphization takes place. At low temperatures, increasing electric fields on liquid water increases both its crystallization and amorphization tendencies.

摘要

我们使用分子动力学模拟研究了在1巴压力以及300至200 K温度范围内,0.1、0.4和1.0 V/nm的静电场对TIP4P/2005水的氢键结构和动力学的影响。在所有这些温度下,用0.1和0.4 V/nm的电场模拟液态水对其结构和动力学变化没有额外影响,否则这些变化会因冷却而已经发生。然而,引入1.0 V/nm的电场会加剧液态水动力学的减慢,在240和220 K时使其结晶为立方冰,并在200 K时使其非晶化。在240和220 K时,结晶分别在5和50 ns内发生。1 V/nm的电场除了冷却的作用外还增加了弛豫时间。我们注意到,当达到液态水的亚稳极限时,会避免结晶并发生非晶化。在1 V/nm时观察到了平衡(液-固)和非平衡(液-非晶)转变。此外,随着电场增加,氢键变得更强。然而,即使发生结晶或非晶化,供体-受体不对称性(两个供体/受体键强度之间的差异)仍然存在。在低温下,增加液态水的电场会增加其结晶和非晶化趋势。

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