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Pseudospin Dependent One-Way Transmission in Graphene-Based Topological Plasmonic Crystals

机译:基于石墨烯的拓扑等离子体晶体中的伪纺丝依赖性单向传输。

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摘要

Originating from the investigation of condensed matter states, the concept of quantum Hall effect and quantum spin Hall effect (QSHE) has recently been expanded to other field of physics and engineering, e.g., photonics and phononics, giving rise to strikingly unconventional edge modes immune to scattering. Here, we present the plasmonic analog of QSHE in graphene plasmonic crystal (GPC) in mid-infrared frequencies. The band inversion occurs when deforming the honeycomb lattice GPCs, which further leads to the topological band gaps and pseudospin features of the edge states. By overlapping the band gaps with different topologies, we numerically simulated the pseudospin-dependent one-way propagation of edge states. The designed GPC may find potential applications in the fields of topological plasmonics and trigger the exploration of the technique of the pseudospin multiplexing in high-density nanophotonic integrated circuits.
机译:源自对凝聚态的研究,量子霍尔效应和量子自旋霍尔效应(QSHE)的概念最近已扩展到物理和工程学的其他领域,例如光子学和声子学,从而产生了不受干扰的非常规边缘模式。散射。在这里,我们介绍了中红外频率下石墨烯等离子体晶体(GPC)中QSHE的等离子体模拟。当使蜂窝状晶格GPC变形时发生带反转,这进一步导致拓扑带隙和边缘状态的伪自旋特征。通过将带隙与不同的拓扑重叠,我们对边缘状态的伪自旋相关的单向传播进行了数值模拟。设计的GPC可能会在拓扑等离激元学领域中找到潜在的应用,并引发对高密度纳米光子集成电路中伪自旋多路复用技术的探索。

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