Entangling operations in nonlinear two-atom Tavis-Cummings models

Rocío Gómez-Rosas, Carlos A. González-Gutiérrez, and Juan Mauricio Torres
Phys. Rev. A 104, 063701 – Published 1 December 2021

Abstract

We derive an analytical approximate solution of the time-dependent state vector in terms of material Bell states and coherent states of the field for a generalized two-atom Tavis-Cummings model with nonlinear intensity-dependent matter-field interaction. Using this solution, we obtain simple expressions for the atomic concurrence and purity in order to study the entanglement in the system at specific interaction times. We show how to implement entangling atomic operations through measurement of the field. We illustrate how these operations can lead to a complete Bell measurement. Furthermore, when considering two orthogonal states of the field as levels of a third qubit, it is possible to implement a unitary three-qubit gate capable of generating authentic tripartite entangled states such as the Greenberger-Horne-Zeilinger state and the W state. As an example of the generic model, we present an ion-trap setting employing the quantized mode of the center-of-mass motion instead of the photonic field, showing that the implementation of realistic entangling operations from intrinsic nonlinear matter-field interactions is indeed possible.

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  • Received 5 August 2021
  • Revised 10 November 2021
  • Accepted 15 November 2021

DOI:https://doi.org/10.1103/PhysRevA.104.063701

©2021 American Physical Society

Physics Subject Headings (PhySH)

Quantum Information, Science & TechnologyAtomic, Molecular & Optical

Authors & Affiliations

Rocío Gómez-Rosas1, Carlos A. González-Gutiérrez2, and Juan Mauricio Torres1,*

  • 1Instituto de Física, Benemérita Universidad Autónoma de Puebla, Apartado Postal J-48, Puebla 72570, Mexico
  • 2Instituto de Nanociencia y Materiales de Aragón and Departamento de Física de la Materia Condensada, CSIC, Universidad de Zaragoza, Zaragoza 50009, Spain

  • *jmtorres@ifuap.buap.mx

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Issue

Vol. 104, Iss. 6 — December 2021

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