论文标题

在光学穿着的BEC中实现1D拓扑仪理论

Realizing a 1D topological gauge theory in an optically dressed BEC

论文作者

Frölian, Anika, Chisholm, Craig S., Neri, Elettra, Cabrera, Cesar R., Ramos, Ramón, Celi, Alessio, Tarruell, Leticia

论文摘要

拓扑规程通过有效的弱相互作用模型描述了某些强相关的量子系统的低能特性。一个主要的例子是分数量子厅态的Chern-Simons理论,在该理论中,任何人的激发都来自弱相互作用的物质粒子与密度依赖性量规场之间的耦合。尽管在传统的固态平台中,这种规格理论只是方便的理论结构,但工程量子系统可以直接实施,并提供肥沃的操场来研究其现象学而无需进行强烈互动。在这里,我们通过实现Bose-Einstein冷凝物中Chern-Simons理论(手性BF理论)的一维还原来报告拓扑规理论的量子模拟。使用该理论的局部保护定律,我们消除了有利于手性质相互作用的自由度,我们通过合成具有动量依赖性散射特性的光学穿着原子状态来设计。这使我们能够揭示手性BF理论的关键特性:手性孤子的形成以及系统本身产生的电场的出现。我们的结果将量子模拟的范围扩大到拓扑规理论,并为在较高维度中实施类似规程的实施开辟了途径。

Topological gauge theories describe the low-energy properties of certain strongly correlated quantum systems through effective weakly interacting models. A prime example is the Chern-Simons theory of fractional quantum Hall states, where anyonic excitations emerge from the coupling between weakly interacting matter particles and a density-dependent gauge field. Although in traditional solid-state platforms such gauge theories are only convenient theoretical constructions, engineered quantum systems enable their direct implementation and provide a fertile playground to investigate their phenomenology without the need for strong interactions. Here, we report the quantum simulation of a topological gauge theory by realizing a one-dimensional reduction of the Chern-Simons theory (the chiral BF theory) in a Bose-Einstein condensate. Using the local conservation laws of the theory, we eliminate the gauge degrees of freedom in favour of chiral matter interactions, which we engineer by synthesizing optically dressed atomic states with momentum-dependent scattering properties. This allows us to reveal the key properties of the chiral BF theory: the formation of chiral solitons and the emergence of an electric field generated by the system itself. Our results expand the scope of quantum simulation to topological gauge theories and open a route to the implementation of analogous gauge theories in higher dimensions.

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