论文标题

实现具有超电原子的异常浮光拓扑系统

Realization of an anomalous Floquet topological system with ultracold atoms

论文作者

Wintersperger, Karen, Braun, Christoph, Ünal, F. Nur, Eckardt, André, Di Liberto, Marco, Goldman, Nathan, Bloch, Immanuel, Aidelsburger, Monika

论文摘要

通过周期性调制(也称为Floquet Engineering)进行的连贯控制已成为一种强大的实验方法,用于实现具有外来特性的新型量子系统。特别是,它已被用于研究各种不同平台的拓扑现象。在驱动的系统中,拟层谱带的拓扑特性通常可以由标准拓扑不变式(例如Chern数字)确定,Chern数字通常用于静态系统中。但是,由于准材料谱的周期性,这种拓扑描述是不完整的,需要新的不变式来充分捕获这些驱动设置的拓扑特性。最突出的是,尽管所有Chern数字都等于零,但存在二维异常的浮子系统,这些系统表现出强大的手性边缘模式。在这里,我们在定期驱动的蜂窝晶格中意识到了具有玻色粒原子的系统,并从能量差距测量和当地霍尔偏转中推断出完整的拓扑不变性。

Coherent control via periodic modulation, also known as Floquet engineering, has emerged as a powerful experimental method for the realization of novel quantum systems with exotic properties. In particular, it has been employed to study topological phenomena in a variety of different platforms. In driven systems, the topological properties of the quasienergy bands can often be determined by standard topological invariants, such as Chern numbers, which are commonly used in static systems. However, due to the periodic nature of the quasienergy spectrum, this topological description is incomplete and new invariants are required to fully capture the topological properties of these driven settings. Most prominently, there exist two-dimensional anomalous Floquet systems that exhibit robust chiral edge modes, despite all Chern numbers are equal to zero. Here, we realize such a system with bosonic atoms in a periodically-driven honeycomb lattice and infer the complete set of topological invariants from energy gap measurements and local Hall deflections.

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