Saved in:
Bibliographic Details
Main Authors: Benabdallah, Fadwa, Abd-Rabbou, M. Y., Daoud, Mohammed, Haddadi, Saeed
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2409.08082
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866916589808386048
author Benabdallah, Fadwa
Abd-Rabbou, M. Y.
Daoud, Mohammed
Haddadi, Saeed
author_facet Benabdallah, Fadwa
Abd-Rabbou, M. Y.
Daoud, Mohammed
Haddadi, Saeed
contents We explore the quantum information resources within bipartite pure and mixed states of the quantum spin-1 Heisenberg dimer system, considering some interesting factors such as the $l_{1}$-norm of quantum coherence, relative coherence, negativity, and steering, influenced by the magnetic field and uniaxial single-ion anisotropy. Through a thorough investigation, we derive the system's density operator at thermal equilibrium and establish a mathematical framework for analyzing quantum resource metrics. Our results unveil the system's behavior at absolute zero temperature. We further observe temperature's role in transitioning the system towards classical states, impacting coherence, entanglement, and steering differently. Notably, we find that increasing the exchange anisotropy parameter can reinforce quantum correlations while adjusting the uniaxial single-ion anisotropy influences the system's quantumness, particularly when it is positive. Some recommendations to maximize quantum coherence, entanglement, and steering involve temperature reduction, increasing the exchange anisotropy parameter, and carefully managing the magnetic field and uniaxial single-ion anisotropy parameter, highlighting the intricate interplay between these factors in maintaining the system's quantum properties.
format Preprint
id arxiv_https___arxiv_org_abs_2409_08082
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Quantum Information Resources in Spin-1 Heisenberg Dimer Systems
Benabdallah, Fadwa
Abd-Rabbou, M. Y.
Daoud, Mohammed
Haddadi, Saeed
Quantum Physics
We explore the quantum information resources within bipartite pure and mixed states of the quantum spin-1 Heisenberg dimer system, considering some interesting factors such as the $l_{1}$-norm of quantum coherence, relative coherence, negativity, and steering, influenced by the magnetic field and uniaxial single-ion anisotropy. Through a thorough investigation, we derive the system's density operator at thermal equilibrium and establish a mathematical framework for analyzing quantum resource metrics. Our results unveil the system's behavior at absolute zero temperature. We further observe temperature's role in transitioning the system towards classical states, impacting coherence, entanglement, and steering differently. Notably, we find that increasing the exchange anisotropy parameter can reinforce quantum correlations while adjusting the uniaxial single-ion anisotropy influences the system's quantumness, particularly when it is positive. Some recommendations to maximize quantum coherence, entanglement, and steering involve temperature reduction, increasing the exchange anisotropy parameter, and carefully managing the magnetic field and uniaxial single-ion anisotropy parameter, highlighting the intricate interplay between these factors in maintaining the system's quantum properties.
title Quantum Information Resources in Spin-1 Heisenberg Dimer Systems
topic Quantum Physics
url https://arxiv.org/abs/2409.08082