Nonlocality of mixtures of the ground and first excited states withinJ1-J2Heisenberg model.

IF 2.3 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER
Jia Bao, Longhui Shen, Hongying Liu, Bin Guo, Zhaoyu Sun
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Abstract

We investigate both bipartite and multipartite nonlocality in theJ1-J2Heisenberg model. Bipartite nonlocality is measured by the Clauser-Horne-Shimony-Holt inequality, while multipartite nonlocality is explored through Bell-type inequalities. Our findings reveal that neither ground-state nor full thermal-state nonlocality reliably characterizes quantum phase transitions (QPTs). However, we uncover that the mixed-state nonlocality of the ground and first excited states exhibits distinctive characteristics applicable to both bipartite and multipartite scenarios. We also demonstrate how mixed-state quantum correlation behaviors depend on varying temperature regimes. In the bipartite case, we observe a phenomenon known as 'correlation reversal' with increasing temperature, a previously unreported occurrence in other models. For the multipartite case, the ability to signify phase transitions is significantly enhanced as the temperature rises. Furthermore, we discover a linear scaling effect that provides valuable insights for extrapolating QPTs in the thermodynamic limit asN→∞. Additionally, we identify the critical temperature at which mixed-state nonlocality becomes a reliable indicator of phase transitions.

海森堡模型 $J_{1}-J_{2}$ 内基态和第一激发态混合物的非局域性。
我们研究了$J_{1}-J_{2}$ 海森堡模型中的双向和多向非位置性。双端非位置性是通过 CHSH 不等式测量的,而多端非位置性则是通过贝尔式不等式探索的。我们的研究结果表明,基态和全热态非位置性都不能可靠地表征量子相变(QPT)。然而,我们发现基态和第一激发态的混合态非位置性表现出适用于双态和多态情景的独特特征。我们还证明了混合态量子相关行为如何取决于不同的温度制度。在双分态情况下,我们观察到一种随着温度升高而出现的 "相关性逆转 "现象,这是以前在其他模型中从未报道过的。在多方情况下,随着温度的升高,标志相变的能力显著增强。此外,我们还发现了一种线性缩放效应,它为推断热力学极限下的 QPTs 提供了宝贵的见解,因为 $N \rightarrow \infty$。此外,我们还确定了混合态非位置性成为相变可靠指标的临界温度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Physics: Condensed Matter
Journal of Physics: Condensed Matter 物理-物理:凝聚态物理
CiteScore
5.30
自引率
7.40%
发文量
1288
审稿时长
2.1 months
期刊介绍: Journal of Physics: Condensed Matter covers the whole of condensed matter physics including soft condensed matter and nanostructures. Papers may report experimental, theoretical and simulation studies. Note that papers must contain fundamental condensed matter science: papers reporting methods of materials preparation or properties of materials without novel condensed matter content will not be accepted.
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