Chiral plasmons with twisted atomic bilayers
arXiv:2006.10474 · doi:10.1103/PhysRevLett.125.077401
Abstract
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.
16 pages, 3 figures
References in corpus (11)
- A new electromagnetic mode in graphene
- Quantum spin Hall effect of light
- Plasmons and screening in monolayer and multilayer black phosphorus
- Giant gyrotropy due to electromagnetic coupling
- Photonic crystals for nano-light in moiré graphene superlattices
- Plasmon mode as a detection of the chiral anomaly in Weyl semimetals
- Chiral response of twisted bilayer graphene
- Charge response function and a novel plasmon mode in graphene
- Optical Conductivity of Twisted Bilayer Graphene
- Quasi-flat plasmonic bands in twisted bilayer graphene
- Tunable Intrinsic Plasmons due to Band Inversion in Topological Materials