Published February 24, 2010 | Version v1
Journal article

Surface energy and surface proton order of the ice Ih basal and prism surfaces

  • 1. Institute of Physics, Chinese Academy of Sciences, PO Box 603, Beijing 100190 (China)
  • 2. London Centre for Nanotechnology, University College London, London WC1H 0AJ (United Kingdom)
  • 3. Department of Chemistry, University College London, London WC1H 0AJ (United Kingdom)

Description

Density-functional theory (DFT) is used to examine the basal and prism surfaces of ice Ih. Similar surface energies are obtained for the two surfaces; however, in each case a strong dependence of the surface energy on surface proton order is identified. This dependence, which can be as much as 50% of the absolute surface energy, is significantly larger than the bulk dependence (<1%) on proton order, suggesting that the thermodynamic ground state of the ice surface will remain proton ordered well above the bulk order-disorder temperature of about 72 K. On the basal surface this suggestion is supported by Monte Carlo simulations with an empirical potential and solution of a 2D Ising model with nearest neighbor interactions taken from DFT. Order parameters that define the surface energy of each surface in terms of nearest neighbor interactions between dangling OH bonds (those which point out of the surface into vacuum) have been identified and are discussed. Overall, these results suggest that proton order-disorder effects have a profound impact on the stability of ice surfaces and will most likely have an effect on ice surface reactivity as well as ice crystal growth and morphology.

Availability note (English)

Available from http://dx.doi.org/10.1088/0953-8984/22/7/074209

Additional details

Identifiers

DOI
10.1088/0953-8984/22/7/074209;
PII
S0953-8984(10)24190-5;

Publishing Information

Journal Title
Journal of Physics. Condensed Matter
Journal Volume
22
Journal Issue
7
Journal Page Range
[11 p.]
ISSN
0953-8984
CODEN
JCOMEL

Conference

Title
2009 Thomas Young Centre workshop on accessing large length and time scales with accurate quantum methods, in celebration of Professor Michael Gillan's 65. birthday
Dates
12-13 Jan 2009
Place
London (United Kingdom)