TY - JOUR
T1 - Molecular dynamics simulations of surface-specific bonding of the hydrogen network of water
T2 - A solution to the low sum-frequency spectra
AU - Ishiyama, Tatsuya
AU - Takahashi, Hideaki
AU - Morita, Akihiro
PY - 2012/7/5
Y1 - 2012/7/5
N2 - Vibrational spectroscopic features of a strong hydrogen (H) bonding network at the vapor/water interface are elucidated by using molecular dynamics (MD) simulation combined with quantum chemical calculations. The strong H-bonding coupling is properly described with quantum electronic effects, including charge transfer. By incorporating these effects in quantum mechanics/molecular mechanics calculations of water surface, we proved that the long-standing controversy on the low-frequency feature in the sum-frequency spectrum is naturally resolved. This feature originates from the significant anisotropic response of O-H vibrations in the H-bonding network at the surface. The anisotropy of the H-bonding network is also revealed in the MD result that the tangential H bonds are stronger than the normal ones at the interface, which is the origin of the high surface tension of water.
AB - Vibrational spectroscopic features of a strong hydrogen (H) bonding network at the vapor/water interface are elucidated by using molecular dynamics (MD) simulation combined with quantum chemical calculations. The strong H-bonding coupling is properly described with quantum electronic effects, including charge transfer. By incorporating these effects in quantum mechanics/molecular mechanics calculations of water surface, we proved that the long-standing controversy on the low-frequency feature in the sum-frequency spectrum is naturally resolved. This feature originates from the significant anisotropic response of O-H vibrations in the H-bonding network at the surface. The anisotropy of the H-bonding network is also revealed in the MD result that the tangential H bonds are stronger than the normal ones at the interface, which is the origin of the high surface tension of water.
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U2 - 10.1103/PhysRevB.86.035408
DO - 10.1103/PhysRevB.86.035408
M3 - Article
AN - SCOPUS:84863688468
SN - 1098-0121
VL - 86
JO - Physical Review B - Condensed Matter and Materials Physics
JF - Physical Review B - Condensed Matter and Materials Physics
IS - 3
M1 - 035408
ER -