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41比特超导处理器上拓扑零模的量子模拟

Quantum Simulation of Topological Zero Modes on a 41-Qubit Superconducting Processor.

作者信息

Shi Yun-Hao, Liu Yu, Zhang Yu-Ran, Xiang Zhongcheng, Huang Kaixuan, Liu Tao, Wang Yong-Yi, Zhang Jia-Chi, Deng Cheng-Lin, Liang Gui-Han, Mei Zheng-Yang, Li Hao, Li Tian-Ming, Ma Wei-Guo, Liu Hao-Tian, Chen Chi-Tong, Liu Tong, Tian Ye, Song Xiaohui, Zhao S P, Xu Kai, Zheng Dongning, Nori Franco, Fan Heng

机构信息

Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.

School of Physical Sciences, University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Phys Rev Lett. 2023 Aug 25;131(8):080401. doi: 10.1103/PhysRevLett.131.080401.

Abstract

Quantum simulation of different exotic topological phases of quantum matter on a noisy intermediate-scale quantum (NISQ) processor is attracting growing interest. Here, we develop a one-dimensional 43-qubit superconducting quantum processor, named Chuang-tzu, to simulate and characterize emergent topological states. By engineering diagonal Aubry-André-Harper (AAH) models, we experimentally demonstrate the Hofstadter butterfly energy spectrum. Using Floquet engineering, we verify the existence of the topological zero modes in the commensurate off-diagonal AAH models, which have never been experimentally realized before. Remarkably, the qubit number over 40 in our quantum processor is large enough to capture the substantial topological features of a quantum system from its complex band structure, including Dirac points, the energy gap's closing, the difference between even and odd number of sites, and the distinction between edge and bulk states. Our results establish a versatile hybrid quantum simulation approach to exploring quantum topological systems in the NISQ era.

摘要

在有噪声的中等规模量子(NISQ)处理器上对量子物质的不同奇异拓扑相进行量子模拟正吸引着越来越多的关注。在此,我们开发了一个名为“庄子”的一维43比特超导量子处理器,以模拟和表征涌现的拓扑态。通过设计对角奥布里 - 安德烈 - 哈珀(AAH)模型,我们通过实验展示了霍夫施塔特蝴蝶能谱。利用弗洛凯工程,我们验证了在相称非对角AAH模型中拓扑零模的存在,这在此前从未通过实验实现过。值得注意的是,我们量子处理器中的比特数超过40,足以从其复杂能带结构中捕捉量子系统的大量拓扑特征,包括狄拉克点、能隙的闭合、格点数奇偶性的差异以及边缘态和体态的区别。我们的结果建立了一种通用的混合量子模拟方法,用于在NISQ时代探索量子拓扑系统。

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