Computer Simulation of Atomic Excitation Conductivity Using the Quantum Master Equation


Cite item

Full Text

Open Access Open Access
Restricted Access Access granted
Restricted Access Subscription Access

Abstract

The conductivity of excitations in short chains of optical cavities containing two-level atoms capable of exchanging photons is considered. The Jaynes–Cummings–Hubbard (JCH) model is used taking into account the dephasing noise effect. Two counterintuitive quantum effects are reproduced for this model: the increase in conductivity by the dephasing noise (DAT effect) and the quantum bottleneck effect, which is a paradoxical slump in conductivity with the enhancement of the excitation transfer to the runoff. Using numerical simulation, we reveal an interesting relationship between those two effects. In particular, we found that the dephasing assisted transport (DAT) effect occurs only at the nonoptimal values of the runoff and inflow, i.e., in conditions where the conductivity is limited by the quantum bottleneck effect.

About the authors

Y. I. Ozhigov

Faculty of Computational Mathematics and Cybernetics; Quantum Computer Physics Laboratory, Institute of Physics and Technology

Author for correspondence.
Email: ozhigov@cs.msu.su
Russian Federation, Moscow; Moscow

N. A. Skovoroda

Faculty of Computational Mathematics and Cybernetics

Email: ozhigov@cs.msu.su
Russian Federation, Moscow


Copyright (c) 2018 Pleiades Publishing, Ltd.

This website uses cookies

You consent to our cookies if you continue to use our website.

About Cookies