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Researchers created novel hypercrystals, enabling direct measurement of their unique light-manipulating properties. This breakthrough offers new insights into nanoscale light-matter interactions and optical density control.

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Area of Science:

  • Nanophotonics
  • Metamaterials
  • Solid-state physics

Background:

  • Photonic crystals and metamaterials offer distinct ways to control light.
  • Hypercrystals merge these concepts, exhibiting hyperbolic dispersion with periodic modulation.
  • Experimental realization of hypercrystals has been challenging due to design and technical limitations.

Purpose of the Study:

  • To experimentally realize hypercrystals with nanoscale lattice constants.
  • To directly measure the Bloch modes and their dispersion.
  • To investigate the unique spectral features and bandstructure of hypercrystals.

Main Methods:

  • Fabrication of hypercrystals with lattice constants from 25 to 160 nm.
  • Direct measurement of Bloch modes using scattering near-field microscopy.
  • Extraction of Bloch mode dispersion from frequency-dependent measurements.

Main Results:

  • Successful creation of nanoscale hypercrystals.
  • Direct observation of Bloch modes and their dispersion.
  • Demonstrated a switch from positive to negative group velocity.
  • Observed sharp density of states peaks, indicative of intermodal coupling.
  • Experimental results align with theoretical predictions of complex hypercrystal bandstructures.

Conclusions:

  • This work provides the first experimental realization and characterization of nanoscale hypercrystals.
  • The findings confirm the unique optical properties predicted for hypercrystals, including tunable group velocity.
  • The observed spectral features offer new avenues for manipulating light-matter interactions and optical density at the nanoscale.