4.8 Article

Quadrupole topological photonic crystals

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NATURE COMMUNICATIONS
卷 11, 期 1, 页码 -

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NATURE RESEARCH
DOI: 10.1038/s41467-020-16916-z

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资金

  1. National Science Foundation through the University of Pennsylvania Materials Research Science and Engineering Center [DMR-1720530]
  2. US Office of Naval Research (ONR) Multidisciplinary University Research Initiative (MURI) grant on Robust Photonic Materials with High-Order Topological Protection [N00014-20-1-2325]
  3. Air Force Office of Scientific Research [FA9550-18-1-0133]
  4. Department of Energy, Office of Basic Energy Sciences [DE FG02 84ER45118]
  5. Army Research Office [W911NF-19-1-0087]

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Quadrupole topological phases, exhibiting protected boundary states that are themselves topological insulators of lower dimensions, have recently been of great interest. Extensions of these ideas from current tight binding models to continuum theories for realistic materials require the identification of quantized invariants describing the bulk quadrupole order. Here we identify the analog of quadrupole order in Maxwell's equations for a gyromagnetic photonic crystal (PhC) through a double-band-inversion process. The quadrupole moment is quantized by the simultaneous presence of crystalline symmetry and broken time-reversal symmetry, which is confirmed using three independent methods: analysis of symmetry eigenvalues, numerical calculations of the nested Wannier bands and the expectation value of the quadrupole operator. Furthermore, we reveal the boundary manifestations of quadrupole phases as quantized edge polarizations and fractional corner charges. The latter are the consequence of a filling anomaly of energy bands as first predicted in electronic systems. Most higher order topological phases are realized by emulations of tight binding models. Extending these concepts to continuum theories requires the identification of invariants describing the bulk multipole order. Here the authors realize the analog of quadrupole order for a gyromagnetic photonic crystal.

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