Active tuning of highly anisotropic phonon polaritons in van der Waals crystal slabs by gated graphene
arXiv:2110.11683 · doi:10.1021/acsphotonics.1c01549
Abstract
Phonon polaritons (PhPs) -- lattice vibrations coupled to electromagnetic fields -- in highly anisotropic media display a plethora of intriguing optical phenomena (including ray-like propagation, anomalous refraction, and topological transitions, among others), which have potential for unprecedented manipulation of the flow of light at the nanoscale. However, the propagation properties of these PhPs are intrinsically linked to the anisotropic crystal structure of the host material. Although in-plane anisotropic PhPs can be steered (and even canalized) by twisting individual crystal slabs in a van der Waals (vdW) stack, active control of their propagation via external stimuli presents a significant challenge. Here, we report on a technology in which anisotropic PhPs supported by biaxial vdW slabs are actively tunable by simply gating an integrated graphene layer. Excitingly, we predict active tuning of optical topological transitions, which enable controlling the canalization of PhPs along different in-plane directions in twisted heterostructures. Apart from their fundamental interest, our findings hold promises for the development of optoelectronic devices (sensors, photodetectors, etc.) based on PhPs with dynamically controllable properties.
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Cited by in corpus (10)
- Gate-tunable negative refraction of mid-infrared polaritons
- Doping-driven topological polaritons in graphene/α-MoO3 heterostructures
- Multiple and spectrally robust photonic magic angles in reconfigurable α-MoO3 trilayers
- Tailoring topological transition of anisotropic polaritons by interface engineering in biaxial crystals
- Roadmap for Photonics with 2D Materials
- Two-dimensional natural hyperbolic materials: From polaritons modulation to applications
- Electrical Spectroscopy of Polaritonic Nanoresonators
- Twist-angle and thickness-ratio tuning of plasmon polaritons in twisted bilayer van der Waals films
- Large-area polycrystalline -MoO3 thin films for IR photonics
- Misalignment between the Directions of Propagation and Decay of Nanoscale-confined Polaritons