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Experimental observation of anomalous topological edge modes in a slowly driven photonic lattice

机译:缓慢驱动的光子晶格中异常拓扑边缘模式的实验观察

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摘要

Topological quantum matter can be realized by subjecting engineered systems to time-periodic modulations. In analogy with static systems, periodically driven quantum matter can be topologically classified by topological invariants, whose non-zero value guarantees the presence of robust edge modes. In the high-frequency limit of the drive, topology is described by standard topological invariants, such as Chern numbers. Away from this limit, these topological numbers become irrelevant, and novel topological invariants must be introduced to capture topological edge transport. The corresponding edge modes were coined anomalous topological edge modes, to highlight their intriguing origin. Here we demonstrate the experimental observation of these topological edge modes in a 2D photonic lattice, where these propagating edge states are shown to coexist with a quasi-localized bulk. Our work opens an exciting route for the exploration of topological physics in time-modulated systems operating away from the high-frequency regime.
机译:拓扑量子物质可以通过对工程系统进行时间周期调制来实现。与静态系统类似,可以通过拓扑不变量对周期性驱动的量子物质进行拓扑分类,其非零值保证了鲁棒边缘模式的存在。在驱动器的高频极限中,拓扑由标准拓扑不变量(例如Chern数)描述。远离此限制,这些拓扑数变得无关紧要,必须引入新的拓扑不变量来捕获拓扑边缘传输。相应的边缘模式被称为异常拓扑边缘模式,以突出其有趣的起源。在这里,我们演示了在二维光子晶格中这些拓扑边缘模式的实验观察,其中这些传播的边缘状态与准局部体积共存。我们的工作为在远离高频状态的时间调制系统中探索拓扑物理开辟了一条令人振奋的途径。

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