Thermal local quantum uncertainty in a two-qubit-superconducting system
under decoherence
- URL: http://arxiv.org/abs/2308.03596v3
- Date: Thu, 26 Oct 2023 09:11:12 GMT
- Title: Thermal local quantum uncertainty in a two-qubit-superconducting system
under decoherence
- Authors: M. R. Pourkarimi, S. Haddadi, M. Nashaat, K. V. Kulikov and Yu. M.
Shukrinov
- Abstract summary: Local quantum uncertainty (LQU) is a measure of quantum correlations.
We show that the thermal LQU can be increased by manipulating the Hamiltonian parameters.
A detailed analysis is presented regarding the impact of decohering channels on thermal LQU.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: By considering the local quantum uncertainty (LQU) as a measure of quantum
correlations, the thermal evolution of a two-qubit-superconducting system is
investigated. We show that the thermal LQU can be increased by manipulating the
Hamiltonian parameters such as the mutual coupling and Josephson energies,
however, it undergoes sudden transitions at specific temperatures. Furthermore,
a detailed analysis is presented regarding the impact of decohering channels on
thermal LQU. This controllable LQU in engineering applications can disclose the
advantage enabled in the superconducting charge qubits for designing quantum
computers and quantum batteries.
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