Entanglement of two qubits interacting with one-mode quantum field

In the present paper we investigate the dynamics of the system of two two-level natural or artificial atoms, in which only one atom couples to a thermal one-mode field in finite-Q cavity, since one of them can move around the cavity. For the description of the dynamics of the system we find the eig...

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Main Authors: Evgenii K. Bashkirov, Mikhail S. Mastyugin
Format: Article
Language:English
Published: Samara State Technical University 2015-06-01
Series:Vestnik Samarskogo Gosudarstvennogo Tehničeskogo Universiteta. Seriâ: Fiziko-Matematičeskie Nauki
Subjects:
Online Access:http://mi.mathnet.ru/eng/vsgtu1377
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spelling doaj-8692ae359aa04205bf393de1dace365a2020-11-24T22:25:07ZengSamara State Technical UniversityVestnik Samarskogo Gosudarstvennogo Tehničeskogo Universiteta. Seriâ: Fiziko-Matematičeskie Nauki1991-86151991-86152015-06-0119220522010.14498/vsgtu1377Entanglement of two qubits interacting with one-mode quantum fieldEvgenii K. Bashkirov0Mikhail S. Mastyugin1Samara State University, Samara, 443011, Russian FederationSamara State University, Samara, 443011, Russian Federation In the present paper we investigate the dynamics of the system of two two-level natural or artificial atoms, in which only one atom couples to a thermal one-mode field in finite-Q cavity, since one of them can move around the cavity. For the description of the dynamics of the system we find the eigenvalues and eigenfunctions of a Hamiltonian of the system. With their help we derive the exact expression for a density matrix of the system in case of a pure initial state of atoms and a thermal state of a field. The reduced atomic density matrix is found. The one-qubit transposing of an atomic density matrix is carried out. With its help the Peres–Horodecki criterium is calculated. Numerical calculations of entanglement parameter is done for different initial pure states of atoms and mean photon numbers in a thermal mode. It is found that the thermal field can induce a high degree of qubits entanglement in considered model. Thus we have derived that one can use the strength of dipole-dipole interaction and cavity temperature for entanglement control in the considered system. It is shown also that the maximum degree of entanglement is reached for one-atom excited state. http://mi.mathnet.ru/eng/vsgtu1377entanglementqubitthermal noisedipole-dipole interactionPeres–Horodecki criterium
collection DOAJ
language English
format Article
sources DOAJ
author Evgenii K. Bashkirov
Mikhail S. Mastyugin
spellingShingle Evgenii K. Bashkirov
Mikhail S. Mastyugin
Entanglement of two qubits interacting with one-mode quantum field
Vestnik Samarskogo Gosudarstvennogo Tehničeskogo Universiteta. Seriâ: Fiziko-Matematičeskie Nauki
entanglement
qubit
thermal noise
dipole-dipole interaction
Peres–Horodecki criterium
author_facet Evgenii K. Bashkirov
Mikhail S. Mastyugin
author_sort Evgenii K. Bashkirov
title Entanglement of two qubits interacting with one-mode quantum field
title_short Entanglement of two qubits interacting with one-mode quantum field
title_full Entanglement of two qubits interacting with one-mode quantum field
title_fullStr Entanglement of two qubits interacting with one-mode quantum field
title_full_unstemmed Entanglement of two qubits interacting with one-mode quantum field
title_sort entanglement of two qubits interacting with one-mode quantum field
publisher Samara State Technical University
series Vestnik Samarskogo Gosudarstvennogo Tehničeskogo Universiteta. Seriâ: Fiziko-Matematičeskie Nauki
issn 1991-8615
1991-8615
publishDate 2015-06-01
description In the present paper we investigate the dynamics of the system of two two-level natural or artificial atoms, in which only one atom couples to a thermal one-mode field in finite-Q cavity, since one of them can move around the cavity. For the description of the dynamics of the system we find the eigenvalues and eigenfunctions of a Hamiltonian of the system. With their help we derive the exact expression for a density matrix of the system in case of a pure initial state of atoms and a thermal state of a field. The reduced atomic density matrix is found. The one-qubit transposing of an atomic density matrix is carried out. With its help the Peres–Horodecki criterium is calculated. Numerical calculations of entanglement parameter is done for different initial pure states of atoms and mean photon numbers in a thermal mode. It is found that the thermal field can induce a high degree of qubits entanglement in considered model. Thus we have derived that one can use the strength of dipole-dipole interaction and cavity temperature for entanglement control in the considered system. It is shown also that the maximum degree of entanglement is reached for one-atom excited state.
topic entanglement
qubit
thermal noise
dipole-dipole interaction
Peres–Horodecki criterium
url http://mi.mathnet.ru/eng/vsgtu1377
work_keys_str_mv AT evgeniikbashkirov entanglementoftwoqubitsinteractingwithonemodequantumfield
AT mikhailsmastyugin entanglementoftwoqubitsinteractingwithonemodequantumfield
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