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弗洛凯驱动里德堡原子中的高阶和分数阶离散时间晶体

Higher-order and fractional discrete time crystals in Floquet-driven Rydberg atoms.

作者信息

Liu Bang, Zhang Li-Hua, Wang Qi-Feng, Ma Yu, Han Tian-Yu, Zhang Jun, Zhang Zheng-Yuan, Shao Shi-Yao, Li Qing, Chen Han-Chao, Shi Bao-Sen, Ding Dong-Sheng

机构信息

Key Laboratory of Quantum Information, University of Science and Technology of China, 230026, Hefei, Anhui, China.

Synergetic Innovation Center of Quantum Information and Quantum Physics, University of Science and Technology of China, 230026, Hefei, Anhui, China.

出版信息

Nat Commun. 2024 Nov 10;15(1):9730. doi: 10.1038/s41467-024-53712-5.

Abstract

Higher-order and fractional discrete time crystals (DTCs) are exotic phases of matter where the discrete time translation symmetry is broken into higher-order and non-integer category. Generation of these unique DTCs has been widely studied theoretically in different systems. However, no current experimental methods can probe these higher-order and fractional DTCs in any quantum many-body systems. We demonstrate an experimental approach to observe higher-order and fractional DTCs in Floquet-driven Rydberg atomic gases. We have discovered multiple n-DTCs with integer values of n = 2, 3, and 4, and others ranging up to 14, along with fractional n-DTCs with n values beyond the integers. The system response can transition between adjacent integer DTCs, during which the fractional DTCs are investigated. Study of higher-order and fractional DTCs expands fundamental knowledge of non-equilibrium dynamics and is promising for discovery of more complex temporal symmetries beyond the single discrete time translation symmetry.

摘要

高阶和分数阶离散时间晶体(DTCs)是奇异的物质相,其中离散时间平移对称性被打破为高阶和非整数类别。这些独特的DTCs的产生在不同系统中已经得到了广泛的理论研究。然而,目前没有实验方法能够在任何量子多体系统中探测这些高阶和分数阶DTCs。我们展示了一种在弗洛凯驱动的里德堡原子气体中观测高阶和分数阶DTCs的实验方法。我们发现了多个n值为整数2、3和4以及其他高达14的n-DTCs,以及n值超出整数范围的分数阶n-DTCs。系统响应可以在相邻的整数DTCs之间转变,在此期间对分数阶DTCs进行了研究。对高阶和分数阶DTCs的研究扩展了非平衡动力学的基础知识,并有望发现超越单一离散时间平移对称性的更复杂的时间对称性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/deba/11551158/d06febee893b/41467_2024_53712_Fig1_HTML.jpg

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