引力波是否有助于真空转向和贝尔非位置性?

IF 5.4 1区 物理与天体物理 Q1 Physics and Astronomy Journal of High Energy Physics Pub Date : 2024-07-18 DOI:10.1007/jhep07(2024)155
Shu-Min Wu, Rui-Di Wang, Xiao-Li Huang, Zejun Wang
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引用次数: 0

摘要

我们研究了两个 Unruh-DeWitt 探测器与真空无质量标量场的局域相互作用在引力波存在和闵科夫斯基时空中收获的量子转向和贝尔非局域性。研究表明,引力波影响下的量子可转向性可能大于或小于闵科夫斯基时空中的量子可转向性,这意味着引力波可以放大或减弱收获的转向。特别是,当探测器的能隙调谐到引力波的频率时,就会产生共振效应。我们还发现,引力波的存在会扩大或缩小真空转向的可捕获分离范围,这取决于能隙、引力波频率和引力波作用的持续时间。值得注意的是,无论是否存在引力波,两个探测器系统在大多数参数空间都满足贝尔不等式,这表明不能认为转向捕获是非局部的。
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Does gravitational wave assist vacuum steering and Bell nonlocality?

We study quantum steering and Bell nonlocality harvested by the local interaction of two Unruh-DeWitt detectors with the vacuum massless scalar field, both in the presence of gravitational waves and in Minkowski spacetime. It is shown that quantum steerability under the influence of gravitational waves can be greater than or less than quantum steerability in Minkowski spacetime, which means that the gravitational waves can amplify or degrade the harvested steering. In particular, a resonance effect occurs when the energy gap of the detector is tuned to the frequency of the gravitational wave. We also find that the harvesting-achievable separation range of vacuum steering can be expanded or reduced by the presence of gravitational waves, which depends on the energy gap, the gravitational wave frequency, and the duration of the gravitational wave action. It is interesting to note that two detector systems that satisfy the Bell inequality in most parameter spaces, regardless of the existence of gravitational waves, indicating that steering harvesting cannot be considered to be nonlocal.

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来源期刊
Journal of High Energy Physics
Journal of High Energy Physics 物理-物理:粒子与场物理
CiteScore
10.30
自引率
46.30%
发文量
2107
审稿时长
1.5 months
期刊介绍: The aim of the Journal of High Energy Physics (JHEP) is to ensure fast and efficient online publication tools to the scientific community, while keeping that community in charge of every aspect of the peer-review and publication process in order to ensure the highest quality standards in the journal. Consequently, the Advisory and Editorial Boards, composed of distinguished, active scientists in the field, jointly establish with the Scientific Director the journal''s scientific policy and ensure the scientific quality of accepted articles. JHEP presently encompasses the following areas of theoretical and experimental physics: Collider Physics Underground and Large Array Physics Quantum Field Theory Gauge Field Theories Symmetries String and Brane Theory General Relativity and Gravitation Supersymmetry Mathematical Methods of Physics Mostly Solvable Models Astroparticles Statistical Field Theories Mostly Weak Interactions Mostly Strong Interactions Quantum Field Theory (phenomenology) Strings and Branes Phenomenological Aspects of Supersymmetry Mostly Strong Interactions (phenomenology).
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