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Semiempirical Self-Consistent Polarization Description of Bulk Water, the Liquid−Vapor Interface, and Cubic Ice

by: Garold Murdachaew, Christopher J. Mundy, Gregory K. Schenter, Teodoro Laino, Jürg Hutter
J. Phys. Chem. A In The Journal of Physical Chemistry A, Vol. 115, No. 23. (3 March 2011), pp. 6046-6053, doi:10.1021/jp110481m  Key: citeulike:12123923

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Abstract

We have applied an efficient electronic structure approach, the semiempirical self-consistent polarization neglect of diatomic differential overlap (SCP-NDDO) method, previously parametrized to reproduce properties of water clusters by Chang, Schenter, and Garrett [ J. Chem. Phys. 2008, 128, 164111 ] and now implemented in the CP2K package, to model ambient liquid water at 300 K (both the bulk and the liquid?vapor interface) and cubic ice at 15 and 250 K. The SCP-NDDO potential retains its transferability and good performance across the full range of conditions encountered in the clusters and the bulk phases of water. In particular, we obtain good results for the density, radial distribution functions, enthalpy of vaporization, self-diffusion coefficient, molecular dipole moment distribution, and hydrogen bond populations, in comparison to experimental measurements. We have applied an efficient electronic structure approach, the semiempirical self-consistent polarization neglect of diatomic differential overlap (SCP-NDDO) method, previously parametrized to reproduce properties of water clusters by Chang, Schenter, and Garrett [ J. Chem. Phys. 2008, 128, 164111 ] and now implemented in the CP2K package, to model ambient liquid water at 300 K (both the bulk and the liquid?vapor interface) and cubic ice at 15 and 250 K. The SCP-NDDO potential retains its transferability and good performance across the full range of conditions encountered in the clusters and the bulk phases of water. In particular, we obtain good results for the density, radial distribution functions, enthalpy of vaporization, self-diffusion coefficient, molecular dipole moment distribution, and hydrogen bond populations, in comparison to experimental measurements.


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