English

Surface tension of supercooled water nanodroplets from computer simulations

Soft Condensed Matter 2019-07-24 v1 Computational Physics

Abstract

We estimate the liquid-vapour surface tension from simulations of TIP4P/2005 water nanodroplets of size NN=100 to 2880 molecules over a temperature TT range of 180 K to 300 K. We compute the planar surface tension γp\gamma_p, the curvature-dependent surface tension γs\gamma_s, and the Tolman length δ\delta, via two approaches, one based on the pressure tensor (the "mechanical route") and the other on the Laplace pressure (the "thermodynamic route"). We find that these two routes give different results for γp\gamma_p, γs\gamma_s and δ\delta, although in all cases we find that δ0\delta\ge 0 and is independent of TT. Nonetheless, the TT dependence of γp\gamma_p is consistent between the two routes and with that of Vega and de Miguel [J. Chem. Phys. 126, 154707 (2007)] down to the crossing of the Widom line at 230 K for ambient pressure. Below 230 K, γp\gamma_p rises more rapidly on cooling than predicted from behavior for T300T\ge 300 K. We show that the increase in γp\gamma_p at low TT is correlated to the emergence of a well-structured random tetrahedral network in our nanodroplet cores, and thus that the surface tension can be used as a probe to detect behavior associated with the proposed liquid-liquid phase transition in supercooled water.

Keywords

Cite

@article{arxiv.1905.13709,
  title  = {Surface tension of supercooled water nanodroplets from computer simulations},
  author = {Shahrazad M. A. Malek and Peter H. Poole and Ivan Saika-Voivod},
  journal= {arXiv preprint arXiv:1905.13709},
  year   = {2019}
}

Comments

11 pages, 11 figures