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Optical magnetism in planar metamaterial heterostructures

Author

Listed:
  • Georgia T. Papadakis

    (California Institute of Technology)

  • Dagny Fleischman

    (California Institute of Technology
    California Institute of Technology)

  • Artur Davoyan

    (California Institute of Technology
    California Institute of Technology
    California Institute of Technology)

  • Pochi Yeh

    (University of Santa Barbara)

  • Harry A. Atwater

    (California Institute of Technology)

Abstract

Harnessing artificial optical magnetism has previously required complex two- and three-dimensional structures, such as nanoparticle arrays and split-ring metamaterials. By contrast, planar structures, and in particular dielectric/metal multilayer metamaterials, have been generally considered non-magnetic. Although the hyperbolic and plasmonic properties of these systems have been extensively investigated, their assumed non-magnetic response limits their performance to transverse magnetic (TM) polarization. We propose and experimentally validate a mechanism for artificial magnetism in planar multilayer metamaterials. We also demonstrate that the magnetic properties of high-index dielectric/metal hyperbolic metamaterials can be anisotropic, leading to magnetic hyperbolic dispersion in certain frequency regimes. We show that such systems can support transverse electric polarized interface-bound waves, analogous to their TM counterparts, surface plasmon polaritons. Our results open a route for tailoring optical artificial magnetism in lithography-free layered systems and enable us to generalize the plasmonic and hyperbolic properties to encompass both linear polarizations.

Suggested Citation

  • Georgia T. Papadakis & Dagny Fleischman & Artur Davoyan & Pochi Yeh & Harry A. Atwater, 2018. "Optical magnetism in planar metamaterial heterostructures," Nature Communications, Nature, vol. 9(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:9:y:2018:i:1:d:10.1038_s41467-017-02589-8
    DOI: 10.1038/s41467-017-02589-8
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    Cited by:

    1. Weihao Yang & Qing Liu & Hanbin Wang & Yiqin Chen & Run Yang & Shuang Xia & Yi Luo & Longjiang Deng & Jun Qin & Huigao Duan & Lei Bi, 2022. "Observation of optical gyromagnetic properties in a magneto-plasmonic metamaterial," Nature Communications, Nature, vol. 13(1), pages 1-8, December.

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