Time-Invariant Discord: High Temperature Limit and Initial Environmental Correlations

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Date

2018

Journal Title

Journal ISSN

Volume Title

Publisher

Springer

Open Access Color

BRONZE

Green Open Access

Yes

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No
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Average
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Average
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Abstract

We present a thorough investigation of the phenomena of frozen and time-invariant quantum discord for two-qubit systems independently interacting with local reservoirs. Our work takes into account several significant effects present in decoherence models, which have not been yet explored in the context of time-invariant quantum discord, but which in fact must be typically considered in almost all realistic models. Firstly, we study the combined influence of dephasing, dissipation and heating reservoirs at finite temperature. Contrarily to previous claims in the literature, we show the existence of time-invariant discord at high temperature limit in the weak coupling regime and also examine the effect of thermal photons on the dynamical behavior of frozen discord. Secondly, we explore the consequences of having initial correlations between the dephasing reservoirs. We demonstrate in detail how the time-invariant discord is modified depending on the relevant system parameters such as the strength of the initial amount of entanglement between the reservoirs.

Description

Keywords

Time-invariant discord, Control of discord, High temperature limit, Open quantum systems, Quantum Discord, Quantum Physics, ta114, FOS: Physical sciences, Quantum Physics (quant-ph), Open systems, reduced dynamics, master equations, decoherence, Quantum control, open quantum systems, control of discord, Statistical thermodynamics, Quantum coherence, entanglement, quantum correlations, high temperature limit, time-invariant discord

Fields of Science

0103 physical sciences, 01 natural sciences

Citation

WoS Q

Q1

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OpenCitations Citation Count
3

Source

Quantum Informatıon Processıng

Volume

17

Issue

4

Start Page

End Page

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Scopus : 3

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Mendeley Readers : 4

SCOPUS™ Citations

3

checked on Mar 15, 2026

Web of Science™ Citations

3

checked on Mar 15, 2026

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0.3258

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