Bose polaron as an instance of quantum Brownian motion

We study the dynamics of a quantum impurity immersed in a Bose-Einstein condensate as an open quantum system in the framework of the quantum Brownian motion model. We derive a generalized Langevin equation for the position of the impurity. The Langevin equation is an integrodifferential equation tha...

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Main Authors: Aniello Lampo, Soon Hoe Lim, Miguel Ángel García-March, Maciej Lewenstein
Format: Article
Language:English
Published: Verein zur Förderung des Open Access Publizierens in den Quantenwissenschaften 2017-09-01
Series:Quantum
Online Access:https://quantum-journal.org/q-2017-09-27-30/pdf/
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spelling doaj-a22d5dfe33ab4e8e888afecfbf66c5922020-11-25T01:32:39ZengVerein zur Förderung des Open Access Publizierens in den QuantenwissenschaftenQuantum2521-327X2017-09-0113010.22331/q-2017-09-27-3010.22331/q-2017-09-27-30Bose polaron as an instance of quantum Brownian motionAniello LampoSoon Hoe LimMiguel Ángel García-MarchMaciej LewensteinWe study the dynamics of a quantum impurity immersed in a Bose-Einstein condensate as an open quantum system in the framework of the quantum Brownian motion model. We derive a generalized Langevin equation for the position of the impurity. The Langevin equation is an integrodifferential equation that contains a memory kernel and is driven by a colored noise. These result from considering the environment as given by the degrees of freedom of the quantum gas, and thus depend on its parameters, e.g. interaction strength between the bosons, temperature, etc. We study the role of the memory on the dynamics of the impurity. When the impurity is untrapped, we find that it exhibits a super-diffusive behavior at long times. We find that back-flow in energy between the environment and the impurity occurs during evolution. When the particle is trapped, we calculate the variance of the position and momentum to determine how they compare with the Heisenberg limit. One important result of this paper is that we find position squeezing for the trapped impurity at long times. We determine the regime of validity of our model and the parameters in which these effects can be observed in realistic experiments.https://quantum-journal.org/q-2017-09-27-30/pdf/
collection DOAJ
language English
format Article
sources DOAJ
author Aniello Lampo
Soon Hoe Lim
Miguel Ángel García-March
Maciej Lewenstein
spellingShingle Aniello Lampo
Soon Hoe Lim
Miguel Ángel García-March
Maciej Lewenstein
Bose polaron as an instance of quantum Brownian motion
Quantum
author_facet Aniello Lampo
Soon Hoe Lim
Miguel Ángel García-March
Maciej Lewenstein
author_sort Aniello Lampo
title Bose polaron as an instance of quantum Brownian motion
title_short Bose polaron as an instance of quantum Brownian motion
title_full Bose polaron as an instance of quantum Brownian motion
title_fullStr Bose polaron as an instance of quantum Brownian motion
title_full_unstemmed Bose polaron as an instance of quantum Brownian motion
title_sort bose polaron as an instance of quantum brownian motion
publisher Verein zur Förderung des Open Access Publizierens in den Quantenwissenschaften
series Quantum
issn 2521-327X
publishDate 2017-09-01
description We study the dynamics of a quantum impurity immersed in a Bose-Einstein condensate as an open quantum system in the framework of the quantum Brownian motion model. We derive a generalized Langevin equation for the position of the impurity. The Langevin equation is an integrodifferential equation that contains a memory kernel and is driven by a colored noise. These result from considering the environment as given by the degrees of freedom of the quantum gas, and thus depend on its parameters, e.g. interaction strength between the bosons, temperature, etc. We study the role of the memory on the dynamics of the impurity. When the impurity is untrapped, we find that it exhibits a super-diffusive behavior at long times. We find that back-flow in energy between the environment and the impurity occurs during evolution. When the particle is trapped, we calculate the variance of the position and momentum to determine how they compare with the Heisenberg limit. One important result of this paper is that we find position squeezing for the trapped impurity at long times. We determine the regime of validity of our model and the parameters in which these effects can be observed in realistic experiments.
url https://quantum-journal.org/q-2017-09-27-30/pdf/
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