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Two-state thermodynamics and the possibility of a liquid-liquid phase transition in supercooled TIP4P/2005 water

机译:两个状态热力学和过冷螺旋/ 2005水中液液相转变的可能性

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Water shows intriguing thermodynamic and dynamic anomalies in the supercooled liquid state. One possible explanation of the origin of these anomalies lies in the existence of a metastable liquid-liquid phase transition (LLPT) between two (high and low density) forms of water. While the anomalies are observed in experiments on bulk and confined water and by computer simulation studies of different water-like models, the existence of a LLPT in water is still debated. Unambiguous experimental proof of the existence of a LLPT in bulk supercooled water is hampered by fast ice nucleation which is a precursor of the hypothesized LLPT. Moreover, the hypothesized LLPT, being metastable, in principle cannot exist in the thermodynamic limit (infinite size, infinite time). Therefore, computer simulations of water models are crucial for exploring the possibility of the metastable LLPT and the nature of the anomalies. In this work, we present new simulation results in the NVT ensemble for one of the most accurate classical molecular models of water, TIP4P/2005. To describe the computed properties and explore the possibility of a LLPT, we have applied two-structure thermodynamics, viewing water as a non-ideal mixture of two interconvertible local structures ("states"). The results suggest the presence of a liquid-liquid critical point and are consistent with the existence of a LLPT in this model for the simulated length and time scales. We have compared the behavior of TIP4P/2005 with other popular water-like models, namely, mW and ST2, and with real water, all of which are well described by two-state thermodynamics. In view of the current debate involving different studies of TIP4P/2005, we discuss consequences of metastability and finite size in observing the liquid-liquid separation. We also address the relationship between the phenomenological order parameter of two-structure thermodynamics and the microscopic nature of the low-density structure. (C) 2016 AIP Publishing LLC.
机译:水显示出过冷液体状态的迷恋热力学和动态异常。对这些异常的起源的一个可能的解释在于存在两种(高密度)的水之间的亚稳液 - 液相过渡(LLPT)。虽然在散装和狭窄的水实验中观察到异常,但通过不同水样模型的计算机仿真研究,仍然讨论了LLPT的存在。散装过冷水中Llpt存在的明确实验证据是通过快速冰核而阻碍的,这是假设的Llpt的前体。此外,原则上的假设Llpt是常规的,在热力学极限(无限大小,无限时间)中不能存在。因此,水模型的计算机模拟对于探索亚稳定性LLPT的可能性以及异常的性质至关重要。在这项工作中,我们在NVT集合中提出了新的仿真结果,以获得最准确的水,Tip4p / 2005的最准确的经典分子模型之一。为了描述计算的属性并探讨LLPT的可能性,我们已经应用了两个结构热力学,将水视为两个互连的局部结构的非理想混合物(“状态”)。结果表明存在液体临界点并且与该模型中的LLPT的存在一致,用于模拟的长度和时间尺度。我们将Tip4P / 2005的行为与其他流行的水式模型,即MW和ST2以及实际水进行了比较了,所有这些都是由两个状态热力学描述的。鉴于当前涉及Tip4P / 2005的不同研究的争论,我们讨论了常规性和有限尺寸在观察液体分离时的后果。我们还解决了双结构热力学的现象学阶参数与低密度结构的微观性质之间的关系。 (c)2016 AIP发布LLC。

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