Department of Physics, Columbia University, New York City, NY, 10027, USA.
Departments of Physics, Brooklyn College of the City University of New York, Brooklyn, NY, 11210, USA.
Sci Rep. 2018 Apr 18;8(1):6228. doi: 10.1038/s41598-018-24358-3.
The behavior of water confined at the nanoscale plays a fundamental role in biological processes and technological applications, including protein folding, translocation of water across membranes, and filtration and desalination. Remarkably, nanoscale confinement drastically alters the properties of water. Using molecular dynamics simulations, we determine the phase diagram of water confined by graphene sheets in slab geometry, at T = 300 K and for a wide range of pressures. We find that, depending on the confining dimension D and density σ, water can exist in liquid and vapor phases, or crystallize into monolayer and bilayer square ices, as observed in experiments. Interestingly, depending on D and σ, the crystal-liquid transformation can be a first-order phase transition, or smooth, reminiscent of a supercritical liquid-gas transformation. We also focus on the limit of stability of the liquid relative to the vapor and obtain the cavitation pressure perpendicular to the graphene sheets. Perpendicular cavitation pressure varies non-monotonically with increasing D and exhibits a maximum at D ≈ 0.90 nm (equivalent to three water layers). The effect of nanoconfinement on the cavitation pressure can have an impact on water transport in technological and biological systems. Our study emphasizes the rich and apparently unpredictable behavior of nanoconfined water, which is complex even for graphene.
水在纳米尺度下的行为在生物过程和技术应用中起着至关重要的作用,包括蛋白质折叠、水跨膜的转运、过滤和脱盐。值得注意的是,纳米尺度的限制极大地改变了水的性质。我们使用分子动力学模拟,在 T=300K 和广泛的压力范围内,确定了在片状几何形状下被石墨烯片限制的水的相图。我们发现,取决于限制维度 D 和密度 σ,水可以存在于液态和气相中,或者结晶成单层和双层方冰,这与实验观察到的一致。有趣的是,取决于 D 和 σ,晶体-液体转变可以是一级相变,或者是平滑的,类似于超临界液体-气体转变。我们还关注相对于气相的液相的稳定性极限,并获得垂直于石墨烯片的空化压力。垂直空化压力随 D 的增加呈非单调变化,并在 D≈0.90nm(相当于三层水层)处出现最大值。纳米限制对空化压力的影响可能会对技术和生物系统中的水传输产生影响。我们的研究强调了纳米限制下水的丰富且显然不可预测的行为,即使对于石墨烯,这种行为也是复杂的。