论文标题

三层拓扑光子晶体异质结构中的大面积量子旋转波导状态

Large-area quantum-spin-Hall waveguide states in a three-layer topological photonic crystal heterostructure

论文作者

Lan, Zhihao, Chen, Menglin L. N., You, Jian Wei, Sha, Wei E. I.

论文摘要

拓扑光子边缘状态通常是在拓扑琐碎和非平凡光子晶体的两个域之间的界面上形成的。利用光子量子大厅和量子谷霍尔的效应的最新作品表明,可以在三层拓扑异质结构中创建大面积拓扑波导状态,该异质结构由有限的宽度域组成,该结构域由具有相反拓扑特性的光子晶体的两个域之间夹在两个光子晶体的域之间。在这项工作中,我们表明可以使用量子自旋效应的光子类似物来创建一种新型的大面积拓扑波导状态。以拓扑光子学中使用良好的WU-HU模型为例,我们表明,将光子晶体的有限宽度结构块夹在两个膨胀和缩小的单位细胞的两个域之间,可能会导致大区域拓扑拓扑的螺旋形波的出现。重要的是,我们揭示了有关带隙的大小的幂律缩放,​​其中大面积螺旋状态驻留在中间域的宽度的函数中,这意味着这些大面积模式在原则上可以在中间域中以任意宽度存在。此外,明确证明了这些大面积波导模式对尖锐弯曲的伪植物锁定单向传播和鲁棒性。我们的工作扩大了可以用于大区块模式的光子系统和平台。

Topological photonic edge states are conventionally formed at the interface between two domains of topologically trivial and nontrivial photonic crystals. Recent works exploiting photonic quantum Hall and quantum valley Hall effects have shown that large-area topological waveguide states could be created in a three-layer topological heterostructure that consists of a finite-width domain featuring Dirac cone sandwiched between two domains of photonic crystals with opposite topological properties. In this work, we show that a new kind of large-area topological waveguide states could be created employing the photonic analogs of quantum spin Hall effect. Taking the well-used Wu-Hu model in topological photonics as an example, we show that sandwiching a finite-width domain of photonic crystals featuring double Dirac cone between two domains of expanded and shrunken unit cells could lead to the emergence of large-area topological helical waveguide states distributed uniformly in the middle domain. Importantly, we unveil a power-law scaling regarding to the size of the bandgap within which the large-area helical states reside as a function of the width of the middle domain, which implies that these large-area modes in principle could exist in the middle domain with arbitrary width. Moreover, pseudospin-momentum locking unidirectional propagations and robustness of these large-area waveguide modes against sharp bends are explicitly demonstrated. Our work enlarges the photonic systems and platforms that could be utilized for large-area-mode enabled topologically waveguiding.

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