论文标题

手性等离子体带有扭曲的原子双层

Chiral plasmons with twisted atomic bilayers

论文作者

Lin, Xiao, Liu, Zifei, Stauber, Tobias, Gómez-Santos, Guillermo, Gao, Fei, Chen, Hongsheng, Zhang, Baile, Low, Tony

论文摘要

范德华(Van der Waals)具有旋转未对准的原子薄层的异质结构,例如扭曲的双层石墨烯,具有有趣的结构Moiré超晶格。由于扭曲的原子层之间的量子耦合,轻度的相互作用本质上是手性的。因此,它们为极端纳米级的手性等离子体提供了一个有希望的平台。但是,尽管层间量子耦合可能很重要,但其对手性等离子体的影响仍然难以捉摸。在这里,我们介绍了扭曲的原子双层中手性等离子体的完整麦克斯韦方程的通用溶液,并考虑了层间量子耦合。我们发现扭曲的原子双层具有与手性超表面的直接对应关系,除了常见的电表电导率外,它同时具有手性和磁表面电导率。换句话说,扭曲的范德华异质结构中的层间量子耦合可能有助于构建各种原子上薄的跨膜。此外,由层间量子耦合确定的手性表面电导率决定了手性等离子体的存在,并导致其TE和TM波成分之间的独特相位关系(即+/-π/2相差)。重要的是,除等离子的常见横向自旋外,还可以利用手性等离子体的这种独特的相位关系来构建血浆的缺失纵向自旋。

Van der Waals heterostructures of atomically thin layers with rotational misalignments, such as twisted bilayer graphene, feature interesting structural moiré superlattices. Due to the quantum coupling between the twisted atomic layers, light-matter interaction is inherently chiral; as such, they provide a promising platform for chiral plasmons in the extreme nanoscale. However, while the interlayer quantum coupling can be significant, its influence on chiral plasmons still remains elusive. Here we present the general solutions from full Maxwell equations of chiral plasmons in twisted atomic bilayers, with the consideration of interlayer quantum coupling. We find twisted atomic bilayers have a direct correspondence to the chiral metasurface, which simultaneously possesses chiral and magnetic surface conductivities, besides the common electric surface conductivity. In other words, the interlayer quantum coupling in twisted van der Waals heterostructures may facilitate the construction of various (e.g., bi-anisotropic) atomically-thin metasurfaces. Moreover, the chiral surface conductivity, determined by the interlayer quantum coupling, determines the existence of chiral plasmons and leads to a unique phase relationship (i.e., +/-π/2 phase difference) between their TE and TM wave components. Importantly, such a unique phase relationship for chiral plasmons can be exploited to construct the missing longitudinal spin of plasmons, besides the common transverse spin of plasmons.

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