Publication | Closed Access
Effect of noise on the classical and quantum mechanical nonlinear response of resonantly coupled anharmonic oscillators
11
Citations
58
References
2006
Year
Quantum DynamicEngineeringVibronic InteractionNonlinear Wave PropagationNoiseQuantum Mechanical TreatmentOscillation TheoryQuantum MatterMolecular SpectroscopyNonlinear Response FunctionsNonlinear VibrationSpectroscopy ProbesQuantum ScienceAnharmonic OscillatorsPhysicsCondensed Matter TheoryNatural SciencesApplied PhysicsNonlinear ResonanceNonlinear Oscillation
Multidimensional infrared spectroscopy probes coupled molecular vibrations in complex, condensed phase systems. Recent theoretical studies have focused on the analytic structure of the nonlinear response functions required to calculate experimental observables in a perturbative treatment of the radiation-matter interaction. Classical mechanical nonlinear response functions have been shown to exhibit unbounded growth for anharmonic, integrable systems, as a consequence of the nonlinearity of classical mechanics, a feature that is absent in a quantum mechanical treatment. We explore the analytic structure of the third-order vibrational response function for an exactly solvable quantum mechanical model that includes some of the important and theoretically challenging aspects of realistic models of condensed phase systems: anharmonicity, resonant coupling, fluctuations, and a well-defined classical mechanical limit.
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