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Published November 22, 2011 | Published + Supplemental Material
Journal Article Open

Decoherence suppression of open quantum systems through a strong coupling to non-Markovian reservoirs

Abstract

In this paper, we provide a mechanism of decoherence suppression for open quantum systems in general and that for a "Schrödinger cat-like" state in particular, through strong couplings to non-Markovian reservoirs. Different from the usual strategies in the literature of suppressing decoherence by decoupling the system from the environment, here the decoherence suppression employs a strong back-reaction from non-Markovian reservoirs. The mechanism relies on the existence of the singularities (bound states) of the nonequilibrium retarded Green function, which completely determines the dissipation and decoherence dynamics of open systems. As an application, we examine the decoherence dynamics of a photonic crystal nanocavity that is coupled to a waveguide. The strong non-Markovian suppression of decoherence for the "optical cat" state is attained.

Additional Information

© 2011 American Physical Society. Received 18 September 2011; published 22 November 2011. This work is partially supported by the National Science Council of ROC under Contract No. NSC-99-2112-M-006- 008-MY3. We also acknowledge the support from the National Center for Theoretical Science of Taiwan.

Attached Files

Published - Lei2011p16494Phys_Rev_A.pdf

Supplemental Material - Markovian_dynamics_weak_coupling.avi

Supplemental Material - Non_Markovian_dynamics_strong_coupling.avi

Supplemental Material - README.TXT

Supplemental Material - supplement.pdf

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