Water inertial reorientation: Hydrogen bond strength and the angular potential
Open Access
- 8 April 2008
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 105 (14) , 5295-5300
- https://doi.org/10.1073/pnas.0801554105
Abstract
The short-time orientational relaxation of water is studied by ultrafast infrared pump-probe spectroscopy of the hydroxyl stretching mode (OD of dilute HOD in H2O). The anisotropy decay displays a sharp drop at very short times caused by inertial orientational motion, followed by a much slower decay that fully randomizes the orientation. Investigation of temperatures from 1°C to 65°C shows that the amplitude of the inertial component (extent of inertial angular displacement) depends strongly on the stretching frequency of the OD oscillator at higher temperatures, although the slow component is frequency-independent. The inertial component becomes frequency-independent at low temperatures. At high temperatures there is a correlation between the amplitude of the inertial decay and the strength of the O-D O hydrogen bond, but at low temperatures the correlation disappears, showing that a single hydrogen bond (OD O) is no longer a significant determinant of the inertial angular motion. It is suggested that the loss of correlation at lower temperatures is caused by the increased importance of collective effects of the extended hydrogen bonding network. By using a new harmonic cone model, the experimentally measured amplitudes of the inertial decays yield estimates of the characteristic frequencies of the intermolecular angular potential for various strengths of hydrogen bonds. The frequencies are in the range of ≈400 cm−1. A comparison with recent molecular dynamics simulations employing the simple point charge-extended water model at room temperature shows that the simulations qualitatively reflect the correlation between the inertial decay and the OD stretching frequency.Keywords
This publication has 39 references indexed in Scilit:
- Hydrogen bond dynamics in aqueous NaBr solutionsProceedings of the National Academy of Sciences, 2007
- Hydrogen bonding and Raman, IR, and 2D-IR spectroscopy of dilute HOD in liquid D 2 OProceedings of the National Academy of Sciences, 2007
- Instantaneous normal mode analysis of orientational motions in liquid water: Local structural effectsThe Journal of Chemical Physics, 2004
- Vibrational spectroscopy of HOD in liquid D2O. III. Spectral diffusion, and hydrogen-bonding and rotational dynamicsThe Journal of Chemical Physics, 2003
- Ultrafast Raman-induced Kerr-effect of water: Single molecule versus collective motionsThe Journal of Chemical Physics, 2000
- Relaxation processes in water: Viscosity, self-diffusion, and spin-lattice relaxation. A kinetic modelThe Journal of Chemical Physics, 1974
- Self-diffusion coefficients and rotational correlation times in polar liquids. VI. WaterThe Journal of Chemical Physics, 1974
- H2O, HDO, and CH3OH Infrared Spectra and Correlation with Solvent Basicity and Hydrogen BondingCanadian Journal of Chemistry, 1971
- INFRARED SPECTRUM AND STRUCTURE OF LIQUID WATERCanadian Journal of Chemistry, 1966
- Proton spin-lattice relaxation in pure water between 0°C and 100°CPhysica, 1966