Enabling propagation of anisotropic polaritons along forbidden directions via a topological transition

Fuente: arXiv
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Autores principales: Duan, Jiahua, Álvarez-Pérez, Gonzalo, Voronin, Kirill V., Prieto, Iván, Taboada-Gutiérrez, Javier, Volkov, Valentyn S., Martín-Sánchez, Javier, Nikitin, Alexey Y., Alonso-González, Pablo
Formato: Preprint
Publicado: 2021
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author Duan, Jiahua
Álvarez-Pérez, Gonzalo
Voronin, Kirill V.
Prieto, Iván
Taboada-Gutiérrez, Javier
Volkov, Valentyn S.
Martín-Sánchez, Javier
Nikitin, Alexey Y.
Alonso-González, Pablo
author_facet Duan, Jiahua
Álvarez-Pérez, Gonzalo
Voronin, Kirill V.
Prieto, Iván
Taboada-Gutiérrez, Javier
Volkov, Valentyn S.
Martín-Sánchez, Javier
Nikitin, Alexey Y.
Alonso-González, Pablo
contents Recent discoveries of polaritons in van der Waals (vdW) crystals with directional in-plane propagation, ultra-low losses, and broad spectral tunability have opened the door for unprecedented manipulation of the flow of light at the nanoscale. However, despite their extraordinary potential for nano-optics, these unique polaritons also present an important limitation: their directional propagation is intrinsically determined by the crystal structure of the host material, which imposes forbidden directions of propagation and hinders its control. Here, we theoretically predict and experimentally demonstrate that directional polaritons (in-plane hyperbolic phonon polaritons) in a vdW biaxial slab (alpha-phase molybdenum trioxide) can be steered along previously forbidden directions by inducing an optical topological transition, which naturally emerges when placing the slab on a substrate with a given negative permittivity (4H-SiC). Importantly, due to the low-loss nature of this topological transition, we are able to visualize in real space exotic intermediate polaritonic states between mutually orthogonal hyperbolic regimes, which permit to unveil the unique topological origin of the transition. This work provides new insights into the emergence of low-loss optical topological transitions in vdW crystals, offering a novel route to efficiently steer the flow of energy at the nanoscale.
format Preprint
id arxiv_https___arxiv_org_abs_2103_09346
institution arXiv
publishDate 2021
record_format arxiv
spellingShingle Enabling propagation of anisotropic polaritons along forbidden directions via a topological transition
Duan, Jiahua
Álvarez-Pérez, Gonzalo
Voronin, Kirill V.
Prieto, Iván
Taboada-Gutiérrez, Javier
Volkov, Valentyn S.
Martín-Sánchez, Javier
Nikitin, Alexey Y.
Alonso-González, Pablo
Optics
Recent discoveries of polaritons in van der Waals (vdW) crystals with directional in-plane propagation, ultra-low losses, and broad spectral tunability have opened the door for unprecedented manipulation of the flow of light at the nanoscale. However, despite their extraordinary potential for nano-optics, these unique polaritons also present an important limitation: their directional propagation is intrinsically determined by the crystal structure of the host material, which imposes forbidden directions of propagation and hinders its control. Here, we theoretically predict and experimentally demonstrate that directional polaritons (in-plane hyperbolic phonon polaritons) in a vdW biaxial slab (alpha-phase molybdenum trioxide) can be steered along previously forbidden directions by inducing an optical topological transition, which naturally emerges when placing the slab on a substrate with a given negative permittivity (4H-SiC). Importantly, due to the low-loss nature of this topological transition, we are able to visualize in real space exotic intermediate polaritonic states between mutually orthogonal hyperbolic regimes, which permit to unveil the unique topological origin of the transition. This work provides new insights into the emergence of low-loss optical topological transitions in vdW crystals, offering a novel route to efficiently steer the flow of energy at the nanoscale.
title Enabling propagation of anisotropic polaritons along forbidden directions via a topological transition
topic Optics
url https://arxiv.org/abs/2103.09346