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量子内存辅助的性不确定性关系作为旋转XXZ模型中的量子相位过渡的签名
Cheng-Cheng Liu1, Ze-Wei Sun2, Xiao-Gang Fan2
1Key Laboratory of Functional Materials and Devices for Informatics of Anhui Educational Institutions, Department of Physics, Fuyang Normal University, Fu Yang, 236037, Anhui, China. liuchengcheng_fy@126.com.
Scientific reports
|April 3, 2025
概括
量子记忆辅助的性不确定性关系 (QMA-EUR) 揭示了旋转模型中的量子相位过渡. 这些关系提供了检测量子关键性的工具,并提高了量子计算的准确性.
科学领域:
- 量子信息理论 量子信息理论
- 凝聚物质物理学 凝聚物质物理学
背景情况:
- 不确定性原则为预测非通勤可观测量的测量设定了基本限制.
- 量子相转换 (QPT) 表示量子系统属性的突然变化.
研究的目的:
- 在旋转XXZ模型中研究量子记忆辅助的性不确定性关系 (QMA-EUR) 和量子相位过渡 (QPT) 之间的关系.
- 开发使用量子相关性来收紧热不确定性关系 (EUR) 边界的方法.
主要方法:
- 使用了量子重规范化组方法.
- 提出了两个方案来收紧欧元的界限:一个是使用量子不一致和经典相关性,另一个是使用Holevo数量和相互信息.
- 通过在代过程中检查区块-区块状态的QMA-EUR来分析QPT.
主要成果:
- 热不确定性及其下限表现出类似的特征.
- 拟议的方案在量子内存的存在下有效地收紧了欧元的界限,提高了预测的准确性.
- 洞量和相互信息提供最佳的下界收紧.
- QMA-EUR值和到两个不同的值,对应于旋流体和Néel阶段.
- QMA-EUR表现出与相关长度相关的非分析性和缩放性.
结论:
- QMA-EUR作为一种有效的工具,用于检测多体系统中的量子关键性.
- 这些发现对量子密钥分布,QPT检测和量子计算能力评估有影响.
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