J Chem Phys. 2010 Jan 28;132(4):046101. doi: 10.1063/1.3298879.
In this note we present results for the heat capacity at constant pressure for the TIP4PQ/2005 model, as obtained from path-integral simulations. The model does a rather good job of describing both the heat capacity of ice I(h) and of liquid water. Classical simulations using the TIP4P/2005, TIP3P, TIP4P, TIP4P-Ew, simple point charge/extended, and TIP5P models are unable to reproduce the heat capacity of water. Given that classical simulations do not satisfy the third law of thermodynamics, one would expect such a failure at low temperatures. However, it seems that for water, nuclear quantum effects influence the heat capacities all the way up to room temperature. The failure of classical simulations to reproduce C(p) points to the necessity of incorporating nuclear quantum effects to describe this property accurately.
在本说明中,我们将展示通过路径积分模拟得到的 TIP4PQ/2005 模型在恒压热容方面的结果。该模型在描述冰 Ih 和液态水的热容方面表现相当出色。使用 TIP4P/2005、TIP3P、TIP4P、TIP4P-Ew、简单点电荷/扩展和 TIP5P 模型进行的经典模拟无法重现水的热容。鉴于经典模拟不符合热力学第三定律,人们预计在低温下会出现这种失败。然而,对于水来说,核量子效应似乎会一直影响热容,直到室温。经典模拟无法重现 C(p)表明需要结合核量子效应来准确描述这一性质。