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Synthetic gauge field and pseudospin-orbit interaction in a stacked two-dimensional ring-network lattice

机译:堆叠二维环网格中的合成仪域和伪旋转轨道互动

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We study the effects of a synthetic gauge field and pseudospin-orbit interaction in a stacked two-dimensional ring-network model. The model was introduced to simulate light propagation in the corresponding ring-resonator lattice, and is thus completely bosonic. Without these two items, the model exhibits Floquet-Weyl and Floquet-topological-insulator phases with topologically gapless and gapped band structures, respectively. The synthetic magnetic field implemented in the model results in a three-dimensional Hofstadter-butterfly-type spectrum in a photonic platform. The resulting gaps are characterized by the winding number of relevant S-matrices together with the Chern number of the bulk bands. The pseudospin-orbit interaction is defined as the mixing term between two pseudospin degrees of freedom in the rings, namely, the clockwise and counter-clockwise modes. It destroys the Floquet-topological-insulator phases, while the Floquet-Weyl phase with multiple Weyl points can be preserved by breaking the space-inversion symmetry. Implementing both the synthetic gauge field and pseudospin-orbit interaction requires a certain nonreciprocity.
机译:我们研究了合成计域和伪旋转轨道相互作用在堆叠的二维环网模型中的影响。引入模型以模拟相应的环形谐振器晶格中的光传播,因此是完全旋转的。如果没有这两个项目,该模型分别展示了浮子 - Weyl和Floquet - 拓扑绝缘体阶段,分别具有拓扑无形的无形磁带结构。在模型中实现的合成磁场导致光子平台中的三维Hofstadter-蝶形谱。所得到的间隙的特征在于相关的S族绕组与散装频带的Chern数量一起的卷绕数。假旋轨道相互作用被定义为环中的两个伪旋流自由度之间的混合项,即顺时针和逆时针模式。它破坏了浮子 - 拓扑绝缘体相,而通过破坏空间反转对称,可以保留具有多个Weyl点的浮子 - Weyl相。实施合成仪域和伪旋转轨道互动需要一定的非侵犯性。

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