AI Article Synopsis

  • Low-dimensional nanomaterials, particularly α-phase molybdenum trioxide (α-MoO), can support hyperbolic phonon polaritons that enhance light interaction, improving sensing and metrology tasks.
  • The research demonstrates the creation of hyperbolic polaritonic rulers using α-MoO waveguides over a flat gold substrate, which are highly sensitive to their geometric configurations.
  • Findings show that near-field imaging capabilities reveal detailed polariton modes that vary with air gap dimensions, enabling precise measurements down to the nanometer scale based on a simple predictive model.

Article Abstract

Low-dimensional, strongly anisotropic nanomaterials can support hyperbolic phonon polaritons, which feature strong light-matter interactions that can enhance their capabilities in sensing and metrology tasks. In this work, we report hyperbolic polaritonic rulers, based on microscale α-phase molybdenum trioxide (α-MoO) waveguides and resonators suspended over an ultraflat gold substrate, which exhibit near-field polaritonic characteristics that are exceptionally sensitive to device geometry. Using scanning near-field optical microscopy, we show that these systems support strongly confined image polariton modes that exhibit ideal antisymmetric gap polariton dispersion, which is highly sensitive to air gap dimensions and can be described and predicted using a simple analytic model. Dielectric constants used for modeling are accurately extracted using near-field optical measurements of α-MoO waveguides in contact with the gold substrate. We also find that for nanoscale resonators supporting in-plane Fabry-Perot modes, the mode order strongly depends on the air gap dimension in a manner that enables a simple readout of the gap dimension with nanometer precision.

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Source
http://dx.doi.org/10.1021/acsnano.3c08735DOI Listing

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