https://doi.org/10.1140/epjb/e2014-40891-0
Regular Article
Approach to equilibrium of a nondegenerate quantum system: decay of oscillations and detailed balance as separate effects of a reservoir
1 D.A. Institute of Information and
Communication Technology (DA-IICT), 382007
Gandhinagar,
India
2 Consortium of the Americas for
Interdisciplinary Science and Department of Physics and Astronomy, University of New
Mexico, Albuquerque,
87131
New Mexico,
USA
a e-mail: mukesh.tiwari@gmail.com
b
e-mail: kenkre@unm.edu
Received:
3
October
2013
Received in final form:
31
January
2014
Published online:
9
April
2014
The approach to equilibrium of a nondegenerate quantum system involves the damping of microscopic population oscillations, and, additionally, the bringing about of detailed balance, i.e. the achievement of the correct Boltzmann factors relating the populations. These two are separate effects of interaction with a reservoir. One stems from the randomization of phases and the other from phase space considerations. Even the meaning of the word ‘phase’ differs drastically in the two instances in which it appears in the previous statement. In the first case it normally refers to quantum phases whereas in the second it describes the multiplicity of reservoir states that corresponds to each system state. The generalized master equation theory for the time evolution of such systems is here developed in a transparent manner and both effects of reservoir interactions are addressed in a unified fashion. The formalism is illustrated in simple cases including in the standard spin-boson situation wherein a quantum dimer is in interaction with a bath consisting of harmonic oscillators. The theory has been constructed for application in energy transfer in molecular aggregates and in photosynthetic reaction centers.
Key words: Statistical and Nonlinear Physics
© EDP Sciences, Società Italiana di Fisica, Springer-Verlag, 2014