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通过相互作用的光子实现分数量子霍尔态。

Realization of fractional quantum Hall state with interacting photons.

作者信息

Wang Can, Liu Feng-Ming, Chen Ming-Cheng, Chen He, Zhao Xian-He, Ying Chong, Shang Zhong-Xia, Wang Jian-Wen, Huo Yong-Heng, Peng Cheng-Zhi, Zhu Xiaobo, Lu Chao-Yang, Pan Jian-Wei

机构信息

Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei 230026, China.

Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai 201315, China.

出版信息

Science. 2024 May 3;384(6695):579-584. doi: 10.1126/science.ado3912. Epub 2024 May 2.

Abstract

Fractional quantum Hall (FQH) states are known for their robust topological order and possess properties that are appealing for applications in fault-tolerant quantum computing. An engineered quantum platform would provide opportunities to operate FQH states without an external magnetic field and enhance local and coherent manipulation of these exotic states. We demonstrate a lattice version of photon FQH states using a programmable on-chip platform based on photon blockade and engineering gauge fields on a two-dimensional circuit quantum electrodynamics system. We observe the effective photon Lorentz force and butterfly spectrum in the artificial gauge field, a prerequisite for FQH states. After adiabatic assembly of Laughlin FQH wave function of 1/2 filling factor from localized photons, we observe strong density correlation and chiral topological flow among the FQH photons. We then verify the unique features of FQH states in response to external fields, including the incompressibility of generating quasiparticles and the smoking-gun signature of fractional quantum Hall conductivity. Our work illustrates a route to the creation and manipulation of novel strongly correlated topological quantum matter composed of photons and opens up possibilities for fault-tolerant quantum information devices.

摘要

分数量子霍尔(FQH)态以其稳健的拓扑序而闻名,并且具有一些特性,使其在容错量子计算应用中颇具吸引力。一个经过设计的量子平台将提供机会,能在没有外部磁场的情况下操控FQH态,并增强对这些奇异态的局部和相干操控。我们基于二维电路量子电动力学系统中的光子阻塞和工程规范场,利用一个可编程的片上平台展示了光子FQH态的晶格版本。我们在人工规范场中观测到了有效的光子洛伦兹力和蝴蝶谱,这是FQH态的一个先决条件。从局域化光子绝热组装出填充因子为1/2的劳克林FQH波函数后,我们观测到了FQH光子之间强烈的密度关联和手性拓扑流。然后,我们验证了FQH态对外场响应的独特特性,包括产生准粒子的不可压缩性以及分数量子霍尔电导率的确凿特征。我们的工作展示了一条创建和操控由光子组成的新型强关联拓扑量子物质的途径,并为容错量子信息器件开辟了可能性。

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