Roton entanglement in quenched dipolar Bose-Einstein condensates

Zehua Tian, Seok-Yeong Chä, and Uwe R. Fischer
Phys. Rev. A 97, 063611 – Published 13 June 2018

Abstract

We study quasi-two-dimensional dipolar Bose-Einstein condensates, in which the Bogoliubov excitation spectrum displays, at sufficiently large gas density, a deep roton minimum due to the spatially anisotropic behavior of the dipolar two-body potential. A rapid quench, performed on the speed of sound of excitations propagating on the condensate background, leads to the dynamical Casimir effect, which can be characterized by measuring the density-density correlation function. It is shown, for both zero and finite initial temperatures, that the continuous-variable bipartite quantum state of the created quasiparticle pairs with opposite momenta, resulting from the quench, displays an enhanced potential for the presence of entanglement (represented by nonseparable and steerable quasiparticle states), when compared to a gas with solely repulsive contact interactions. Steerable quasiparticle pairs contain momenta from close to the roton, and hence quantum correlations significantly increase in the presence of a deep roton minimum.

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  • Received 27 November 2017

DOI:https://doi.org/10.1103/PhysRevA.97.063611

©2018 American Physical Society

Physics Subject Headings (PhySH)

Atomic, Molecular & OpticalGravitation, Cosmology & AstrophysicsQuantum Information, Science & Technology

Authors & Affiliations

Zehua Tian, Seok-Yeong Chä, and Uwe R. Fischer

  • Department of Physics and Astronomy, Seoul National University, Center for Theoretical Physics, Seoul 08826, Korea

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Issue

Vol. 97, Iss. 6 — June 2018

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