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Global dynamical analysis of vibrational manifolds of HOCl and HOBr under anharmonicity and Fermi resonance: the dynamical potential approach |
Fang Chao(房超) and Wu Guo-Zhen(吴国祯)† |
Molecular and Nano Sciences Laboratory, Department of Physics, Tsinghua University, Beijing 100084, China |
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Abstract The vibrational dynamics of HOCl and HOBr between bending and OCl/OBr stretching coordinates with anharmonicity and Fermi coupling is studied with the classical dynamical potential approach. The quantal vibrational dynamics is mostly mapped out by the classical nonlinear variables such as fixed points, except for the state energies, which are quantized. This approach is global in the sense that the focus is on a set of levels instead of individual ones. The dynamics of HOBr is demonstrated to be less complicated. The localized modes along the OCl/OBr stretching coordinates are also shown to have O--Br bonds more prone to dissociation.
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Received: 19 May 2009
Revised: 18 June 2009
Accepted manuscript online:
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PACS:
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63.20.Ry
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(Anharmonic lattice modes)
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63.20.Pw
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(Localized modes)
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Fund: Project supported by the Research
Foundation from Ministry of Education of China (Grant No. 306020),
the Specialized Research Fund for the Doctoral Program of Higher
Education, China (Grant No. 20060003050), and the National Natural
Science Foundation of China (Grant No. 20373030). |
Cite this article:
Fang Chao(房超) and Wu Guo-Zhen(吴国祯) Global dynamical analysis of vibrational manifolds of HOCl and HOBr under anharmonicity and Fermi resonance: the dynamical potential approach 2010 Chin. Phys. B 19 010509
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