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Universal momentum-to-real-space mapping of topological singularities

Author

Listed:
  • Xiuying Liu

    (Nankai University)

  • Shiqi Xia

    (Nankai University)

  • Ema Jajtić

    (University of Zagreb)

  • Daohong Song

    (Nankai University
    Shanxi University)

  • Denghui Li

    (Nankai University)

  • Liqin Tang

    (Nankai University
    Shanxi University)

  • Daniel Leykam

    (Center for Theoretical Physics of Complex Systems, Institute for Basic Science)

  • Jingjun Xu

    (Nankai University
    Shanxi University)

  • Hrvoje Buljan

    (Nankai University
    University of Zagreb)

  • Zhigang Chen

    (Nankai University
    Shanxi University
    San Francisco State University)

Abstract

Topological properties of materials are typically presented in momentum space. Here, we demonstrate a universal mapping of topological singularities from momentum to real space. By exciting Dirac-like cones in photonic honeycomb (pseudospin-1/2) and Lieb (pseudospin-1) lattices with vortex beams of topological charge l, optimally aligned with a given pseudospin state s, we directly observe topological charge conversion that follows the rule l → l + 2s. Although the mapping is observed in photonic lattices where pseudospin-orbit interaction takes place, we generalize the theory to show it is the nontrivial Berry phase winding that accounts for the conversion which persists even in systems where angular momentum is not conserved, unveiling its topological origin. Our results have direct impact on other branches of physics and material sciences beyond the 2D photonic platform: equivalent mapping occurs for 3D topological singularities such as Dirac-Weyl synthetic monopoles, achievable in mechanical, acoustic, or ultracold atomic systems, and even with electron beams.

Suggested Citation

  • Xiuying Liu & Shiqi Xia & Ema Jajtić & Daohong Song & Denghui Li & Liqin Tang & Daniel Leykam & Jingjun Xu & Hrvoje Buljan & Zhigang Chen, 2020. "Universal momentum-to-real-space mapping of topological singularities," Nature Communications, Nature, vol. 11(1), pages 1-8, December.
  • Handle: RePEc:nat:natcom:v:11:y:2020:i:1:d:10.1038_s41467-020-15374-x
    DOI: 10.1038/s41467-020-15374-x
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