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Modeling quantum resonances

The two previous secfions were devoted to modeling quantum resonances by means of effective Hamiltonians. From the mathematical point of view we have used two principal tools projection operators that permit to focus on a few states of interest and analytic continuation that allows to uncover the complex energies. Because the time-dependent Schrodinger equation is formally equivalent to the Liouville equation, it is attractive to try to solve the Liouville equation using the same tools and thus establishing a link between the dynamics and the nonequilibrium thermodynamics. For that purpose we will briefly recall the definition of the correlation functions which are similar to the survival and transition amplitudes of quantum mechanics. Then two models of regression of a fluctuation and of a chemical kinetic equation including a transition state will be presented. [Pg.33]

Paidarova, Ph. Durand, Modeling quantum resonances 1. Dynamics of interacting resonances, in J. Maruani, R. Lefebvre, E. Brandas (Eds.), Advanced Topics in Theoretical Chemical Physics, Vol. 12 Progress in Theoretical Chemistry and Physics, Kluwer Academic, Dordrecht, 2003, p. 271. [Pg.47]

MODELING QUANTUM RESONANCES I. DYNAMICS OF INTERACTING RESONANCES... [Pg.271]

MODELING QUANTUM RESONANCES INTERACTION DYNAMICS 273 2. Theory... [Pg.273]

MODELING QUANTUM RESONANCES II, OVERVIEW OF COLLISION THEORY... [Pg.295]

MODELING QUANTUM RESONANCES COLLISION THEORY 309 Acknowledgements... [Pg.309]

Modeling quantum, resonances I. Dynamics of interacting resonances 271... [Pg.530]

Modeling quantum resonances II. Overview of collision theory... [Pg.530]


See other pages where Modeling quantum resonances is mentioned: [Pg.275]    [Pg.277]    [Pg.283]    [Pg.285]    [Pg.287]    [Pg.289]    [Pg.291]    [Pg.293]    [Pg.293]    [Pg.296]    [Pg.297]    [Pg.299]    [Pg.301]    [Pg.303]    [Pg.305]    [Pg.307]   
See also in sourсe #XX -- [ Pg.271 , Pg.295 ]




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