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在超导量子模拟器上探索自旋流体动力学。

Probing spin hydrodynamics on a superconducting quantum simulator.

作者信息

Shi Yun-Hao, Sun Zheng-Hang, Wang Yong-Yi, Wang Zheng-An, Zhang Yu-Ran, Ma Wei-Guo, Liu Hao-Tian, Zhao Kui, Song Jia-Cheng, Liang Gui-Han, Mei Zheng-Yang, Zhang Jia-Chi, Li Hao, Chen Chi-Tong, Song Xiaohui, Wang Jieci, Xue Guangming, Yu Haifeng, Huang Kaixuan, Xiang Zhongcheng, Xu Kai, Zheng Dongning, Fan Heng

机构信息

Institute of Physics, Chinese Academy of Sciences, Beijing, China.

School of Physical Sciences, University of Chinese Academy of Sciences, Beijing, China.

出版信息

Nat Commun. 2024 Aug 31;15(1):7573. doi: 10.1038/s41467-024-52082-2.

Abstract

Characterizing the nature of hydrodynamical transport properties in quantum dynamics provides valuable insights into the fundamental understanding of exotic non-equilibrium phases of matter. Experimentally simulating infinite-temperature transport on large-scale complex quantum systems is of considerable interest. Here, using a controllable and coherent superconducting quantum simulator, we experimentally realize the analog quantum circuit, which can efficiently prepare the Haar-random states, and probe spin transport at infinite temperature. We observe diffusive spin transport during the unitary evolution of the ladder-type quantum simulator with ergodic dynamics. Moreover, we explore the transport properties of the systems subjected to strong disorder or a tilted potential, revealing signatures of anomalous subdiffusion in accompany with the breakdown of thermalization. Our work demonstrates a scalable method of probing infinite-temperature spin transport on analog quantum simulators, which paves the way to study other intriguing out-of-equilibrium phenomena from the perspective of transport.

摘要

表征量子动力学中流体动力学输运性质的本质,为深入理解奇异的非平衡物质相提供了有价值的见解。在大规模复杂量子系统上实验模拟无限温度输运具有相当大的研究意义。在此,我们使用一个可控且相干的超导量子模拟器,通过实验实现了能有效制备哈尔随机态的模拟量子电路,并探测了无限温度下的自旋输运。我们在具有遍历动力学的阶梯型量子模拟器的幺正演化过程中观察到了扩散性自旋输运。此外,我们还探究了处于强无序或倾斜势场中的系统的输运性质,揭示了伴随热化破坏出现的反常亚扩散特征。我们的工作展示了一种在模拟量子模拟器上探测无限温度自旋输运的可扩展方法,为从输运角度研究其他有趣的非平衡现象铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6b2b/11366024/94547bc0f5a0/41467_2024_52082_Fig1_HTML.jpg

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