Surface plasmons induce topological transition in graphene/α-MoO<sub>3</sub> heterostructures

ORAL

Abstract

Polaritons in hyperbolic van der Waals materials—where principal axes have permittivities of opposite signs—are light-matter modes with unique properties and promising applications. Isofrequency contours of hyperbolic polaritons may undergo topological transitions from open hyperbolas to closed ellipse-like curves, prompting an abrupt change in physical properties. Electronically-tunable topological transitions are especially desirable for future integrated technologies but have yet to be demonstrated. In this work, we present a doping-induced topological transition effected by plasmon-phonon hybridization in graphene/α-MoO3 heterostructures. Scanning near-field optical microscopy was used to image hybrid polaritons in graphene/α-MoO3. We demonstrate the topological transition and characterize hybrid modes, which can be tuned from surface waves to bulk waveguide modes, traversing an exceptional point arising from the anisotropic plasmon-phonon coupling. Graphene/α-MoO3 heterostructures offer the possibility to explore dynamical topological transitions and directional coupling that could inspire new nanophotonic and quantum devices.

*Research at Columbia University is solely supported as part of Programmable Quantum Materials, an Energy Frontier Research Center funded by the U.S. Department of Energy (DOE), Office of Science, Basic Energy Sciences (BES), under award DE-SC0019443. WSe2 synthesis was supported by the Center on Precision-Assembled Quantum Materials, funded through the US National Science Foundation (NSF) Materials Research Science and Engineering Centers (award no. DMR-2011738). D.N.B. is Moore Investigator in Quantum Materials EPIQS #9455. The Flatiron Institute is a division of the Simons Foundation.

Publication: Ruta, F.L., Kim, B.S.Y., Sun, Z. et al. Surface plasmons induce topological transition in graphene/a-MoO3 heterostructures. Nat Commun 13, 3719 (2022). https://doi.org/10.1038/s41467-022-31477-z

Presenters

  • Frank L Ruta

    • Columbia University

Authors

  • Frank L Ruta

    • Columbia University
  • Brian S Kim

    • Columbia University
  • Zhiyuan Sun

    • Tsinghua University
    • Harvard University
  • Daniel J Rizzo

    • Columbia University
  • Alexander S McLeod

    • University of Minnesota
    • Columbia University
  • Anjaly Rajendran

    • Columbia University
  • Song Liu

    • Columbia University
  • Andrew Millis

    • Columbia University
    • Columbia University, Flatiron Institute
  • James C Hone

    • Columbia University
  • Dmitri N Basov

    • Columbia University
    • Department of Physics, Columbia University, New York, NY, USA