Non-Equilibrium Quantum Many-body Physics with Ultracold Atoms

None Hui Zhai
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Abstract

Combining quantum many-body physics and nonequilibrium physics is an important opportunity and challenge for current physics research. Nonequilibrium quantum many-body physics is not only a subject of common interest to many branches of physics but also an indispensable theoretical foundation for developing emergent quantum technologies. Cold atom system provides an ideal platform for studying nonequilibrium quantum many-body physics. The advantages of cold atom system, as well as other synthetic quantum systems, are reflected in studying various nonequilibrium processes such as the thermalization of isolated system, dissipation induced by coupling to the environment, ramping, quench, or periodically driving physical parameters of a system. In this work, three examples from our research are discussed to show how the study of nonequilibrium quantum many-body physics with cold atoms can help us go beyond the existing framework of topological physics, uncover new methods of detecting quantum many-body correlations, and enrich the physical content of gauge theory. Such a research concerns the fundamental properties of quantum many-body system, such as topology and correlation, utilizes the advantages of cold atomic system to achieve a quantitative comparison between theory and experiment, and aims at discovering universal physical rules for nonequilibrium quantum many-body process, which can be extended to condensed matter and nuclear matter systems.
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具有超冷原子的非平衡量子多体物理
将量子多体物理与非平衡物理相结合是当前物理学研究的重要机遇和挑战。非平衡态量子多体物理不仅是许多物理学分支共同关注的课题,也是发展新兴量子技术不可或缺的理论基础。冷原子系统为研究非平衡态量子多体物理提供了一个理想的平台。冷原子系统以及其他合成量子系统的优势体现在对各种非平衡过程的研究上,如孤立系统的热化、与环境耦合引起的耗散、系统的斜坡、淬火或周期性驱动物理参数。本文讨论了我们研究中的三个例子,以说明冷原子非平衡量子多体物理的研究如何帮助我们超越现有的拓扑物理框架,揭示检测量子多体相关性的新方法,并丰富规范理论的物理内容。该研究关注量子多体系统的拓扑、相关等基本性质,利用冷原子系统的优势,实现理论与实验的定量比较,旨在发现非平衡态量子多体过程的普遍物理规律,并将其推广到凝聚态和核物质系统。
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