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Confinement effects on the liquid-liquid phase transition and anomalous properties of a monatomic water-like liquid

机译:约束对单原子水状液体的液相-液相转变和异常性质的影响

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We use molecular dynamics simulations to study the effects of confinement on the phase behavior of a water-like monatomic liquid that exhibits a liquid-liquid phase transition (LLPT) and a liquid-liquid critical point (LLCP). The liquid is confined between parallel walls and we focus on the effects of wall separation and surface chemistry (solvophobicity/solvophilicity) on the location of the LLCP, temperature of maximum density (TMD) line, and loci of compressibility maxima (CM). It is found that, independently of the surface solvophobicity/solvophilicity, the LLCP, TMD, and CM lines shift rapidly towards higher pressures and lower temperatures as the wall separation is reduced. It follows that the effects of confinement on the TMD and CM lines are indicative of the confinement effects on the LLCP/LLPT. Confinement effects are observable already when the liquid particles form approximate to 15 layers between the walls. For the case of water, this corresponds to a separation of approximate to 4-5 nm between the surfaces, larger than the confining dimension of the nanopores commonly used to study the hypothesized LLPT in confined water. Hence, our results suggest that such experiments should not be interpreted in terms of the phase diagrams proposed for bulk water. (C) 2015 AIP Publishing LLC.
机译:我们使用分子动力学模拟来研究限制对水样单原子液体的相行为的影响,该液体表现出液-液相转变(LLPT)和液-液临界点(LLCP)。液体被限制在平行壁之间,我们关注的是壁分离和表面化学(疏油性/亲溶剂性)对LLCP的位置,最大密度(TMD)线的温度以及最大可压缩性(CM)位点的影响。已经发现,随着壁分离的减少,LLCP,TMD和CM线与表面疏油性/亲溶剂性无关,迅速向较高的压力和较低的温度移动。因此,限制对TMD和CM线的影响表明了对LLCP / LLPT的限制作用。当液体颗粒在壁之间形成大约15层时,已经可以观察到限制效果。对于水而言,这对应于表面之间的大约4-5 nm的间隔,大于通常用于研究封闭水中假设的LLPT的纳米孔的封闭尺寸。因此,我们的结果表明,不应根据针对散装水提出的相图来解释此类实验。 (C)2015 AIP Publishing LLC。

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