Observation of naturally canalized phonon polaritons in LiV2O5 thin layers

Author:

F. Tresguerres-Mata Ana I.ORCID,Lanza ChristianORCID,Taboada-Gutiérrez JavierORCID,Matson Joseph. R.ORCID,Álvarez-Pérez GonzaloORCID,Isobe MasahikoORCID,Tarazaga Martín-Luengo AitanaORCID,Duan JiahuaORCID,Partel StefanORCID,Vélez MaríaORCID,Martín-Sánchez JavierORCID,Nikitin Alexey Y.ORCID,Caldwell Joshua D.ORCID,Alonso-González PabloORCID

Abstract

AbstractPolariton canalization is characterized by intrinsic collimation of energy flow along a single crystalline axis. This optical phenomenon has been experimentally demonstrated at the nanoscale by stacking and twisting van der Waals (vdW) layers of α-MoO3, by combining α-MoO3 and graphene, or by fabricating an h-BN metasurface. However, these material platforms have significant drawbacks, such as complex fabrication and high optical losses in the case of metasurfaces. Ideally, it would be possible to canalize polaritons “naturally” in a single pristine layer. Here, we theoretically predict and experimentally demonstrate naturally canalized phonon polaritons (PhPs) in a single thin layer of the vdW crystal LiV2O5. In addition to canalization, PhPs in LiV2O5 exhibit strong field confinement ($${{{{{{\boldsymbol{\lambda }}}}}}}_{{{{{{\bf{p}}}}}}} \sim \frac{{{{{{{\boldsymbol{\lambda }}}}}}}_{{{{{{\bf{0}}}}}}}}{{{{{{\bf{27}}}}}}}$$ λ p ~ λ 0 27 ), slow group velocity (0.0015c), and ultra-low losses (lifetimes of 2 ps). Our findings are promising for the implementation of low-loss optical nanodevices where strongly directional light propagation is needed, such as waveguides or optical routers.

Publisher

Springer Science and Business Media LLC

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