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首页> 外文期刊>Physical Review, A >Topological edge states with ultracold atoms carrying orbital angular momentum in a diamond chain
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Topological edge states with ultracold atoms carrying orbital angular momentum in a diamond chain

机译:拓扑边缘状态具有超薄原子在钻石链中携带轨道角动量

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We study the single-particle properties of a system formed by ultracold atoms loaded into the manifold of l = 1 orbital angular momentum (OAM) states of an optical lattice with a diamond-chain geometry. Through a series of successive basis rotations, we show that the OAM degree of freedom induces phases in some tunneling amplitudes of the tight-binding model that are equivalent to a net π flux through the plaquettes. These effects give rise to a topologically nontrivial band structure and protected edge states which persist everywhere in the parameter space of the model, indicating the absence of a topological transition. By taking advantage of these analytical mappings, we also show that this system constitutes a realization of a square-root topological insulator. In addition, we demonstrate that quantum interferences between the different tunneling processes involved in the dynamics may lead to Aharanov-Bohm caging in the system. All these analytical results are confirmed by exact diagonalization numerical calculations.
机译:我们研究由钻石链几何形状的L = 1轨道角动量(OAM)状态的UltACold原子形成的系统的单颗粒性能。通过一系列连续的基础旋转,我们表明OAM自由度的自由度在一些紧密结合模型的一些隧道振动中引起阶段,其等同于通过斑块的净π通量。这些效应产生了一种拓扑非频带结构和受保护的边缘状态,其在模型的参数空间中持续存在,表示没有拓扑转换。通过利用这些分析映射,我们还表明该系统构成了方形拓扑绝缘体的实现。此外,我们证明了动态涉及的不同隧道过程之间的量子干扰可能导致系统中的AHARANOV-BOHM CAIL。所有这些分析结果都通过精确的对角化数值计算来确认。

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