4.8 Article

Infrared Permittivity of the Biaxial van der Waals Semiconductor α-MoO3 from Near- and Far-Field Correlative Studies

Journal

ADVANCED MATERIALS
Volume 32, Issue 29, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.201908176

Keywords

dielectric function; hyperbolic phonon polaritons; van der Waals materials

Funding

  1. Severo Ochoa Program from the Goverment of the Principality of Asturias [PA-20-PF-BP19-053, PA-18-PF-BP17-126]
  2. Spanish Ministry of Economy and Competitiveness [FIS2016-76617-P]
  3. Clarin Marie Curie-COFUND grant from the Government of the Principality of Asturias
  4. EU [PA-18-ACB17-29]
  5. Ramon y Cajal Program from the Government of Spain [RYC2018-026196-I]
  6. Australian Research Council (ARC) [FT150100450, IH150100006, CE170100039]
  7. National Science Foundation (U.S.A.) [U0048926]
  8. Spanish Ministry of Science, Innovation and Universities [MAT2017-88358-C3-3-R]
  9. Basque Government [IT1164-19]
  10. European Research Council [715496]

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The biaxial van der Waals semiconductor alpha-phase molybdenum trioxide (alpha-MoO3) has recently received significant attention due to its ability to support highly anisotropic phonon polaritons (PhPs)-infrared (IR) light coupled to lattice vibrations-offering an unprecedented platform for controlling the flow of energy at the nanoscale. However, to fully exploit the extraordinary IR response of this material, an accurate dielectric function is required. Here, the accurate IR dielectric function of alpha-MoO3 is reported by modeling far-field polarized IR reflectance spectra acquired on a single thick flake of this material. Unique to this work, the far-field model is refined by contrasting the experimental dispersion and damping of PhPs, revealed by polariton interferometry using scattering-type scanning near-field optical microscopy (s-SNOM) on thin flakes of alpha-MoO3, with analytical and transfer-matrix calculations, as well as full-wave simulations. Through these correlative efforts, exceptional quantitative agreement is attained to both far- and near-field properties for multiple flakes, thus providing strong verification of the accuracy of this model, while offering a novel approach to extracting dielectric functions of nanomaterials. In addition, by employing density functional theory (DFT), insights into the various vibrational states dictating the dielectric function model and the intriguing optical properties of alpha-MoO3 are provided.

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