Department of Physics and Physical Oceanography, Memorial University of Newfoundland, St. John's, NL, A1B 3X7, Canada.
Department of Physics, St. Francis Xavier University, Antigonish, NS, B2G 2W5, Canada.
Nat Commun. 2018 Jun 19;9(1):2402. doi: 10.1038/s41467-018-04816-2.
Liquid water nanodroplets are important in earth's climate, and are valuable for studying supercooled water because they resist crystallisation well below the bulk freezing temperature. Bulk liquid water has well-known thermodynamic anomalies, such as a density maximum, and when supercooled is hypothesised to exhibit a liquid-liquid phase transition (LLPT) at elevated pressure. However, it is not known how these bulk anomalies might manifest themselves in nanodroplets. Here we show, using simulations of the TIP4P/2005 water model, that bulk anomalies occur in nanodroplets as small as 360 molecules. We also show that the Laplace pressure inside small droplets reaches 220 MPa at 180 K, conditions close to the LLPT of TIP4P/2005. While the density and pressure inside nanodroplets coincide with bulk values at moderate supercooling, we show that deviations emerge at lower temperature, as well as significant radial density gradients, which arise from and signal the approach to the LLPT.
液态水纳米液滴在地球气候中很重要,并且对于研究过冷水非常有价值,因为它们在远低于整体冰点的温度下仍能很好地抵抗结晶。液态水具有众所周知的热力学异常,例如密度最大值,并且当过冷时,在高压下假设会表现出液-液相转变(LLPT)。然而,目前尚不清楚这些整体异常如何在纳米液滴中表现出来。在这里,我们使用 TIP4P/2005 水模型的模拟表明,即使在小至 360 个分子的纳米液滴中也会出现整体异常。我们还表明,在 180 K 时,小液滴内的拉普拉斯压力达到 220 MPa,接近 TIP4P/2005 的 LLPT。虽然在适度过冷时,纳米液滴内的密度和压力与整体值相符,但我们表明,在较低温度下会出现偏差,以及显著的径向密度梯度,这是由接近 LLPT 引起并发出信号的。