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Quantum Fisher information of an open and noisy system in the steady state

2016/01/29 by Azmi Ali Altintas, Azmi Ali Altıntaṣ · 3 citations
Computer Science · Physics and Astronomy · #Advanced Thermodynamics and Statistical Mechanics #Concurrence #Dephasing #Dissipative system #Noise (video) #Physics #Quantum #Quantum Information and Cryptography #Quantum Mechanics and Applications #Quantum decoherence #Quantum entanglement #Quantum mechanics #Quantum system #Qubit #Reset (finance) #Statistical physics #quant-ph

paper · pdf · doi:10.1016/j.aop.2016.01.016

14 pages, 2 figures

openalex publication_date 2016/01/29 · arxiv created 2016/02/19 · arxiv updated 2016/02/23 · openalex created_date 2017/10/20 · openalex updated_date 2026/08/05

Abstract

We study the quantum Fisher information (QFI) per particle of an open (parti- cles can enter and leave the system) and dissipative (far from thermodynamical equilibrium) steady state system of two qubits in a noise which is decoherence. We show the behavior of QFI per particle of the system due to changes of re- set and decoherence parameters r and γ respectively. The parameter r is the strength of the reset mechanism, γ is the strength of decoherence and in our case it is dephasing channel. The parameters γ and r are real numbers. We observe that the reset parameter must be bigger than decoherence parameter. We have found that by choosing coupling parameter g as 5γ the QFI per particle is 1.00226 which is greater than shot noise limit at γ = 0.5 and r = 14 . Also the concurrence and negativity of the such state have been calculated and they are found as 0.0992486 and 0.0496243 respectively. We have shown that when the concurrence and negativity of some specific states different than zero, which means the state is entangled, the QFI of the system is greater than 1. The QFI per particle, concurrence and negativity shows that the chosen case is weakly entangled. We discovered that the optimal direction depends on the parameters r and γ and a change in the direction effects the behavior of the QFI of the system.

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