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Updated: Jan 14, 2026

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在驱动散流式玻色子链中,混沌和量子动力学
Filippo Ferrari1,2, Fabrizio Minganti1,2,3, Camille Aron1,4
1Institute of Physics, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.
概括
我们在驱动量子系统中探索了空间热化. 发现了一个两阶段的过程:快速的相位损失,随后是缓慢的振幅放松,创建一个"热前"的水力动力体制.
科学领域:
- 量子多体物理学 量子多体物理学
- 非平衡的量子动力学 量子动力学
背景情况:
- 量子系统中的热化通常是随着时间的推移而被研究的,对其空间动态的理解较少.
- 驱动散射量子系统,就像电路量子电力学中的量子系统一样,为研究非平衡现象提供了新的平台.
- 了解空间热化对于控制量子多体系统至关重要.
研究的目的:
- 为了研究一个驱动的斯 - 哈巴德链中的热化空间方面.
- 在非平衡稳定状态 (NESS) 中探测混乱的动态指纹.
- 识别和描述长期空间热化的新模式.
主要方法:
- 使用切断的维格纳近似来模拟量子系统.
- 采用半古典的时间外顺序相关因子来检测混乱.
- 分析波斯-哈巴德模型与连贯的边界驱动和消散.
主要成果:
- 观察到一个两阶段的空间热化:在驱动器附近的相连贯性快速丧失,在更长的距离上放缓的振幅放松.
- 确定了一种具有异常温度配置的扩展水力动力学体制,称为"前热"域.
- 在更强的驱动器下,出现了一个非热,非混乱的有限动量凝聚物,具有子波伊森的光子统计数据.
结论:
- 长时间的空间热化可以发生在驱动散射量子系统中.
- 确定了所识别的
- 在前热热的过程中,
- 电流和有限动量凝聚物代表了新的非平衡状态.
- 空间热化的类似机制可能与广泛的扩展驱动散流系统有关.
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