TY - JOUR
T1 - Nonlinear quantum dynamics in diatomic molecules
T2 - Vibration, rotation and spin
AU - Yang, Ciann Dong
AU - Weng, Hung Jen
PY - 2012/4
Y1 - 2012/4
N2 - For a given molecular wavefunction Ψ, the probability density function ΨΨ is not the only information that can be extracted from Ψ. We point out in this paper that nonlinear quantum dynamics of a diatomic molecule, completely consistent with the probability prediction of quantum mechanics, does exist and can be derived from the quantum Hamilton equations of motion determined by Ψ. It can be said that the probability density function ΨΨ is an external representation of the quantum state Ψ, while the related Hamilton dynamics is an internal representation of Ψ, which reveals the internal mechanism underlying the externally observed random events. The proposed internal representation of Ψ establishes a bridge between nonlinear dynamics and quantum mechanics, which allows the methods and tools already developed by the former to be applied to the latter. Based on the quantum Hamilton equations of motion derived from Ψ, vibration, rotation and spin motions of a diatomic molecule and the interactions between them can be analyzed simultaneously. The resulting dynamic analysis of molecular motion is compared with the conventional probability analysis and the consistency between them is demonstrated.
AB - For a given molecular wavefunction Ψ, the probability density function ΨΨ is not the only information that can be extracted from Ψ. We point out in this paper that nonlinear quantum dynamics of a diatomic molecule, completely consistent with the probability prediction of quantum mechanics, does exist and can be derived from the quantum Hamilton equations of motion determined by Ψ. It can be said that the probability density function ΨΨ is an external representation of the quantum state Ψ, while the related Hamilton dynamics is an internal representation of Ψ, which reveals the internal mechanism underlying the externally observed random events. The proposed internal representation of Ψ establishes a bridge between nonlinear dynamics and quantum mechanics, which allows the methods and tools already developed by the former to be applied to the latter. Based on the quantum Hamilton equations of motion derived from Ψ, vibration, rotation and spin motions of a diatomic molecule and the interactions between them can be analyzed simultaneously. The resulting dynamic analysis of molecular motion is compared with the conventional probability analysis and the consistency between them is demonstrated.
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U2 - 10.1016/j.chaos.2012.01.006
DO - 10.1016/j.chaos.2012.01.006
M3 - Article
AN - SCOPUS:84862785828
SN - 0960-0779
VL - 45
SP - 402
EP - 415
JO - Chaos, solitons and fractals
JF - Chaos, solitons and fractals
IS - 4
ER -