Equivalence between Redfield- and master-equation approaches for a time-dependent quantum system and coherence control


Autoria(s): SOARES-PINTO, D. O.; MOUSSA, Miled Hassan Youssef; MAZIERO, J.; AZEVEDO, Eduardo Ribeiro de; BONAGAMBA, Tito Jose; SERRA, R. M.; CELERI, L. C.
Contribuinte(s)

UNIVERSIDADE DE SÃO PAULO

Data(s)

19/04/2012

19/04/2012

2011

Resumo

We present a derivation of the Redfield formalism for treating the dissipative dynamics of a time-dependent quantum system coupled to a classical environment. We compare such a formalism with the master equation approach where the environments are treated quantum mechanically. Focusing on a time-dependent spin-1/2 system we demonstrate the equivalence between both approaches by showing that they lead to the same Bloch equations and, as a consequence, to the same characteristic times T(1) and T(2) (associated with the longitudinal and transverse relaxations, respectively). These characteristic times are shown to be related to the operator-sum representation and the equivalent phenomenological-operator approach. Finally, we present a protocol to circumvent the decoherence processes due to the loss of energy (and thus, associated with T(1)). To this end, we simply associate the time dependence of the quantum system to an easily achieved modulated frequency. A possible implementation of the protocol is also proposed in the context of nuclear magnetic resonance.

UFABC

Coordenacao de Aperfeicoamento de Pessoal de Nivel Superior (CAPES)

FAPESP

Identificador

PHYSICAL REVIEW A, v.83, n.6, 2011

1050-2947

http://producao.usp.br/handle/BDPI/16408

10.1103/PhysRevA.83.062336

http://dx.doi.org/10.1103/PhysRevA.83.062336

Idioma(s)

eng

Publicador

AMER PHYSICAL SOC

Relação

Physical Review A

Direitos

restrictedAccess

Copyright AMER PHYSICAL SOC

Palavras-Chave #TRAPPED IONS #DECOHERENCE #SPIN #RELAXATION #DYNAMICS #COMPUTATION #PHOTON #DECAY #DOTS #BATH #Optics #Physics, Atomic, Molecular & Chemical
Tipo

article

original article

publishedVersion