Quantum teleportation and dynamics of quantum coherence and metrological non-classical correlations for open two-qubit systems.
Journal
Scientific reports
ISSN: 2045-2322
Titre abrégé: Sci Rep
Pays: England
ID NLM: 101563288
Informations de publication
Date de publication:
22 Nov 2023
22 Nov 2023
Historique:
received:
27
08
2023
accepted:
31
10
2023
medline:
23
11
2023
pubmed:
23
11
2023
entrez:
22
11
2023
Statut:
epublish
Résumé
We investigate the dynamics of non-classical correlations and quantum coherence in open quantum systems by employing metrics like local quantum Fisher information, local quantum uncertainty, and quantum Jensen-Shannon divergence. Our focus here is on a system of two qubits in two distinct physical situations: the first one when the two qubits are coupled to a cavity field whether the system is closed or open, while the second consists of two qubits immersed in dephasing reservoirs. Our study places significant emphasis on how the evolution of these quantum criterion is influenced by the initial state's purity (whether pure or mixed) and the nature of the environment (whether Markovian or non-Markovian). We observe that a decrease in the initial state's purity corresponds to a reduction in both quantum correlations and quantum coherence, whereas higher purity enhances these quantumness. Furthermore, we establish a quantum teleportation strategy based on the two different physical scenarios. In this approach, the resulting state of the two qubits functions as a quantum channel integrated into a quantum teleportation protocol. We also analyze how the purity of the initial state and the Markovian or non-Markovian regimes impact the quantum teleportation process.
Identifiants
pubmed: 37993497
doi: 10.1038/s41598-023-46396-2
pii: 10.1038/s41598-023-46396-2
pmc: PMC10665350
doi:
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
20526Informations de copyright
© 2023. The Author(s).
Références
Phys Rev Lett. 2002 Jan 7;88(1):017901
pubmed: 11800986
Phys Rev Lett. 2006 Mar 31;96(12):127006
pubmed: 16605950
Phys Rev Lett. 2001 Dec 24;87(26):267901
pubmed: 11800856
Nature. 2010 Mar 4;464(7285):45-53
pubmed: 20203602
Phys Rev Lett. 2014 Oct 3;113(14):140401
pubmed: 25325620
Proc Natl Acad Sci U S A. 1963 Jun;49(6):910-8
pubmed: 16591109
Phys Rev Lett. 2008 Oct 10;101(15):150402
pubmed: 18999575
Phys Rev A Gen Phys. 1985 Apr;31(4):2314-2317
pubmed: 9895763
Phys Rev A Gen Phys. 1989 Oct 15;40(8):4277-4281
pubmed: 9902666
Science. 2007 Apr 27;316(5824):579-82
pubmed: 17463284
Nature. 2004 Sep 9;431(7005):159-62
pubmed: 15356624
Phys Rev Lett. 2013 Jun 14;110(24):240402
pubmed: 25165897
Phys Rev Lett. 2009 Nov 20;103(21):210401
pubmed: 20366019
Phys Rev Lett. 1993 Mar 29;70(13):1895-1899
pubmed: 10053414
Phys Rev Lett. 2010 Nov 5;105(19):190502
pubmed: 21231155
Phys Rev Lett. 2004 Oct 1;93(14):140404
pubmed: 15524773
Phys Rev Lett. 1991 Aug 5;67(6):661-663
pubmed: 10044956
Sci Rep. 2019 Dec 23;9(1):19632
pubmed: 31873086
Nature. 2017 Sep 7;549(7670):70-73
pubmed: 28825708
Phys Rev Lett. 2003 Oct 31;91(18):180403
pubmed: 14611271
Phys Rev Lett. 2016 Apr 15;116(15):150504
pubmed: 27127948