Dynamics of two-qubit quantum nonlocality in a Heisenberg chain model with the intrinsic decoherence
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Abstract
This paper investigates the dynamics of two-spin nonlocality generation in a Heisenberg XXX
chain with Dzyaloshinskii-Moriya (DM) and Kaplan-Shekhtman-Entin-Wohlman-Aharony (KSEA)
interactions. We analyze the two-spin nonlocality dynamics by using uncertainty-induced nonlocality, maximal Bell inequality, and log-negativity. We demonstrate that a separable two-spin Heisenberg XXX chain state, induced by two-spin antiferromagnetic interaction as well as x-component
of DM and KSEA interactions, could evolve to maximal two-spin nonlocality state. The ability of
preserving the maximal uncertainty-induced nonlocality can be enhanced by increasing the coupling
strength of the spin-spin interaction coupling. The hierarchy principle is maintained for the two-spin
Bell nonlocality and log-negativity entanglement. The two-spin log-negativity dynamics exhibits the
phenomenon of sudden death and birth as a result of the intrinsic decoherence, which also causes
a reduction in the two-spin nonlocalities. The two-spin uncertainty-induced nonlocality is more robust, against the intrinsic decoherence, than the other types of the nonlocality. The results indicate
that by boosting the two-spin antiferromagnetic interaction, the produced nonlocalities (resulting
from the DM and KSEA x-component interactions) can be shielded from the intrinsic decoherence
effect
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Citation
Mohamed, A. B., Aldosari, F. M., Alsahli, A. M., & Eleuch, H. (2023). Dynamics of two-qubit quantum nonlocality in a Heisenberg chain model with the intrinsic decoherence. Optical and Quantum Electronics, 55(3), 284.
