具有外部控制参数的双量子位NV中心中超越纠缠的热局部量子信息

IF 2.5 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
A.-B. A. Mohamed, H. Allhibi, F. Aljuaydi, Atta ur Rahman
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引用次数: 0

摘要

利用局域量子费雪信息(LQFI)、局域量子不确定性(LQU)和并发性作为量词,研究了基于氮空位(NV)中心的双量子位系统中量子相关的热行为。这些结果表明,通过并发(CE)测量的纠缠随着温度的升高而迅速衰减,而基于相干的测量(如LQFI和LQU)显示出更大的弹性。零场分裂的强度在形成量子相关中起着关键作用,在帮助保持相干性的同时显著抑制高值的纠缠。外部磁场和电场进一步影响了这些动态-磁场倾向于抑制纠缠,而电场则加速其降解。偶极-偶极相互作用增强了初始量子相关性,但对其热衰减的影响有限。总的来说,这些发现强调了基于相干的量子资源的鲁棒性,并表明,虽然偶极子-偶极子耦合在调节量子相关性方面更有效,但在有限温度下,系统参数的优化调整可以显著改善这些相关性的产生和保存。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Thermal Local Quantum Information Beyond Entanglement in Two-Qubit NV Centers with External Control Parameters

Thermal Local Quantum Information Beyond Entanglement in Two-Qubit NV Centers with External Control Parameters

The thermal behavior of quantum correlations is explored in a two-qubit system based on nitrogen-vacancy (NV) centers, using Local Quantum Fisher Information (LQFI), Local Quantum Uncertainty (LQU), and concurrence as quantifiers. These results show that entanglement, measured byconcurrence (CE), decays rapidly with increasing temperature, whereas coherence-based measures such as LQFI and LQU display greater resilience. The strength of zero-field splitting plays a key role in shaping quantum correlations, significantly suppressing entanglement at higher values while helping to preserve coherence. External magnetic and electric fields further influence these dynamics–magnetic fields tend to suppress entanglement, while electric fields accelerate its degradation. Dipole–dipole interactions enhance the initial quantum correlations but have a limited effect on their thermal decay. Overall, these findings underscore the robustness of coherence-based quantum resources and suggest that, while dipole–dipole coupling is more effective at regulating quantum correlations, optimal tuning of system parameters can significantly improve both the generation and preservation of these correlations at finite temperatures.

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来源期刊
Annalen der Physik
Annalen der Physik 物理-物理:综合
CiteScore
4.50
自引率
8.30%
发文量
202
审稿时长
3 months
期刊介绍: Annalen der Physik (AdP) is one of the world''s most renowned physics journals with an over 225 years'' tradition of excellence. Based on the fame of seminal papers by Einstein, Planck and many others, the journal is now tuned towards today''s most exciting findings including the annual Nobel Lectures. AdP comprises all areas of physics, with particular emphasis on important, significant and highly relevant results. Topics range from fundamental research to forefront applications including dynamic and interdisciplinary fields. The journal covers theory, simulation and experiment, e.g., but not exclusively, in condensed matter, quantum physics, photonics, materials physics, high energy, gravitation and astrophysics. It welcomes Rapid Research Letters, Original Papers, Review and Feature Articles.
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