Flat band fine-tuning and its photonic applications.

Nanophotonics

Center for Theoretical Physics of Complex Systems, Institute for Basic Science (IBS), 34126, Daejeon, Republic of Korea.

Published: September 2024

AI Article Synopsis

  • Flat bands in tight-binding lattices are unique energy bands that can exhibit macroscopic degeneracies and respond interestingly to changes, making them candidates for exotic physical phases.
  • The review explores methods to create these flat band networks, focusing on symmetry and precise adjustments, and how these methods can handle perturbations in single-particle and many-body contexts.
  • Notable discoveries from this strategy include non-perturbative metal-insulator transitions and fractal phases, with potential applications in designing advanced nanophotonic systems like photonic crystals and metasurfaces.

Article Abstract

Flat bands - single-particle energy bands - in tight-binding lattices, aka networks, have attracted attention due to the presence of macroscopic degeneracies and their sensitivity to perturbations. They support compact localized eigenstates protected by destructive interference. This makes them natural candidates for emerging exotic phases and unconventional orders. In this review we consider the recently proposed systematic ways to construct flat band networks based on symmetries or fine-tuning. We then discuss how the construction methods can be further extended, adapted or exploited in presence of perturbations, both single-particle and many-body. This strategy has lead to the discovery of non-perturbative metal-insulator transitions, fractal phases, nonlinear and quantum caging and many-body nonergodic quantum models. We discuss what implications these results may have for the design of fine-tuned nanophotonic systems including photonic crystals, nanocavities, and metasurfaces.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11501073PMC
http://dx.doi.org/10.1515/nanoph-2024-0135DOI Listing

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