4.4 Article

Theoretical Infrared Line Shapes of H-Bonds Within the Strong Anharmonic Coupling Theory and Fermi Resonances Effects

Journal

INTERNATIONAL JOURNAL OF QUANTUM CHEMISTRY
Volume 110, Issue 14, Pages 2583-2602

Publisher

WILEY
DOI: 10.1002/qua.22395

Keywords

hydrogen bond; anharmonicity; Morse potential; Fermi resonances; infrared line shape; direct and indirect relaxation; linear response theory; autocorrelation function

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In this article, we extend a previous work toward presenting a theoretical study of the effects of Fermi resonances and the fundamental anharmonic coupling parameter alpha between the high-frequency mode and the H-bond bridge. The model incorporates (i) both intrinsic anharmonicities of the fast mode (double well potential) and the H-bond Bridge (Morse potential), (ii) strong anharmonic coupling theory, (iii) Fermi resonances by the aid of an anharmonic coupling between the fast mode and one or several harmonic bending modes, (iv) quadratic modulation of both the angular frequency and the equilibrium position of the X ->(H) over bar...Y stretching mode on the intermonomer (X) over bar - H...(Y) over bar motions, and (v) the quantum direct (fast and bending modes) and indirect dampings (slow mode). The IR spectral density is obtained by Fourier transform of the autocorrelation function of the transition dipole moment operator of the X-H bond. The numerical calculation shows that Fermi resonances generate very complicated profiles with multisubstructure and also provide a direct evidence of Fermi resonances which were predicted to be a major feature of H-bonds. (C) 2009 Wiley Periodicals, Inc. Int J Quantum Chem 110: 2583-2602, 2010

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