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Broad spectral tuning of ultra-low-loss polaritons in a van der Waals crystal by intercalation.

Javier Taboada-GutiérrezGonzalo Álvarez-PérezJiahua DuanWeiliang MaKyle CrowleyIván PrietoAndrei BylinkinMarta AutoreHalyna VolkovaKenta KimuraTsuyoshi KimuraM-H BergerShaojuan LiQiaoliang BaoXuan P A GaoIon ErreaAlexey Yu NikitinRainer HillenbrandJavier Martín-SánchezPablo Alonso-González
Published in: Nature materials (2020)
Phonon polaritons-light coupled to lattice vibrations-in polar van der Waals crystals are promising candidates for controlling the flow of energy on the nanoscale due to their strong field confinement, anisotropic propagation and ultra-long lifetime in the picosecond range1-5. However, the lack of tunability of their narrow and material-specific spectral range-the Reststrahlen band-severely limits their technological implementation. Here, we demonstrate that intercalation of Na atoms in the van der Waals semiconductor α-V2O5 enables a broad spectral shift of Reststrahlen bands, and that the phonon polaritons excited show ultra-low losses (lifetime of 4 ± 1 ps), similar to phonon polaritons in a non-intercalated crystal (lifetime of 6 ± 1 ps). We expect our intercalation method to be applicable to other van der Waals crystals, opening the door for the use of phonon polaritons in broad spectral bands in the mid-infrared domain.
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