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Two-structure thermodynamics for the TIP4P/2005 model of water covering supercooled and deeply stretched regions

机译:TIp4p / 2005水覆盖过冷和深拉伸区域的双结构热力学

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摘要

One of the most promising frameworks for understanding the anomalies of cold and supercooled water postulates the existence of two competing, interconvertible local structures. If the non-ideality in the Gibbs energy of mixing overcomes the ideal entropy of mixing of these two structures, a liquid-liquid phase transition, terminated at a liquid-liquid critical point, is predicted. Various versions of the “two-structure equation of state” (TSEOS) based on this concept have shown remarkable agreement with both experimental data for metastable, deeply supercooled water and simulations of molecular water models. However, existing TSEOSs were not designed to describe the negative pressure region and do not account for the stability limit of the liquid state with respect to the vapor. While experimental data on supercooled water at negative pressures may shed additional light on the source of the anomalies of water, such data are very limited. To fill this gap, we have analyzed simulation results for TIP4P/2005, one of the most accurate classical water models available. We have used recently published simulation data, and performed additional simulations, over a broad range of positive and negative pressures, from ambient temperature to deeply supercooled conditions. We show that, by explicitly incorporating the liquid-vapor spinodal into a TSEOS, we are able to match the simulation data for TIP4P/2005 with remarkable accuracy. In particular, this equation of state quantitatively reproduces the lines of extrema in density, isothermal compressibility, and isobaric heat capacity. Contrary to an explanation of the thermodynamic anomalies of water based on a “retracing spinodal,” the liquid-vapor spinodal in the present TSEOS continues monotonically to lower pressures upon cooling, influencing but not giving rise to density extrema and other thermodynamic anomalies.
机译:理解冷水和过冷水异常的最有前途的框架之一假设存在两个相互竞争,可相互转换的局部结构。如果吉布斯混合能的非理想性克服了这两种结构混合的理想熵,则可以预测在液-液临界点处终止的液-液相转变。基于该概念的各种版本的“二元结构状态方程”(TSEOS)已与亚稳态,深冷水的实验数据以及分子水模型的仿真显示出显着的一致性。但是,现有的TSEOS并非旨在描述负压区域,也没有考虑液态相对于蒸汽的稳定性极限。尽管有关负压过冷水的实验数据可能会进一步揭示水异常源,但此类数据非常有限。为了填补这一空白,我们分析了TIP4P / 2005(一种最准确的经典水模型)的模拟结果。我们使用了最近发布的模拟数据,并在从环境温度到深度过冷条件的宽范围的正负压力范围内执行了其他模拟。我们表明,通过将液气旋节线器明确整合到TSEOS中,我们能够以惊人的精度匹配TIP4P / 2005的模拟数据。特别地,该状态方程定量地再现了密度,等温压缩性和等压热容的极值线。与基于“回旋旋节线”的水热力学异常的解释相反,本TSEOS中的液汽旋节线在冷却后单调持续降低压力,但不会引起密度极值和其他热力学异常。

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