论文标题

一维等离子晶体中拓扑超晶格和相关界面状态的实现

Realization of topological superlattices and the associated interface states in one-dimensional plasmonic crystals

论文作者

Liu, C., Ong, H. C.

论文摘要

在类似于Su-Schrieffer-Heeger(SSH)模型中,一维(1D)电磁(EM)晶体可以表现出非平凡的拓扑特性。特别是,当非平凡的EM晶体与其微不足道的对应物接触时,形成了受拓扑保护的界面状态。尽管非常关注单个接口状态,但在适当的条件下,多个接口状态可以集体相互作用,从而产生与标准SSH模型相似的琐碎或非平凡的带拓扑。在这里,我们研究了支持多个接口状态的1D金属超晶格的拓扑特性。我们首先演示了两个托有呈蓝光表面等离子体极性子的拓扑不同的金属阵列之间的边界。然后将这种接口状态用作进一步构建超晶格的构建块。通过利用两个二聚体的界面状态与不同的间接口配置之间的分离来促进不同的内核和间插细胞相互作用,我们将改变超级晶格的带拓扑。更重要的是,当将微不足道和非琐碎的超级晶格汇集在一起​​时,形成了新的超级晶格界面状态。发现超晶格界面状态的角差异比单个对应物具有较小的角度差异且定位长的长度,因此对于稳健的信号传递和高技能腔而言是需要的。

In analogous to the Su-Schrieffer-Heeger (SSH) model, one-dimensional (1D) electromagnetic (EM) crystals can exhibit nontrivial topological properties. In particular, when a nontrivial EM crystal is in contact with its trivial counterpart, a topologically protected interface state is formed. While much attention has been focused on single interface state, multiple interface states can interact collectively when under suitable conditions, giving rise to trivial or nontrivial band topologies resembling to the standard SSH model. Here, we study the topological properties of 1D metallic superlattices that support multiple interface states. We first demonstrate single interface state exists at the boundary between two topologically distinct metallic arrays that carry Bloch-like surface plasmon polaritons. Such interface state is then used as the building block for further constructing the superlattices. By exploiting the separation between two dimerized interface states and the distinct inter- and intra-interface configurations to facilitate different intracell and intercell interactions, we vary the band topology of the superlattices. More importantly, new superlattice interface state is formed when trivial and nontrivial superlattices are brought together. The superlattice interface state is found to have smaller angular divergence and longer localization length than its single counterpart, thus is desired for robust signal transmission and high finesse cavity.

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