Surface plasmons induce topological transition in graphene/MoO<sub>3</sub> heterostructures
ORAL
Abstract
Polaritons in hyperbolic van der Waals materials – where principal axes have permittivities of opposite signs – have helped develop new nanotechnologies, study fundamental nano-optics, and probe complex response functions. The isofrequency contours of hyperbolic polaritons may undergo topological transitions from open hyperbolas to closed ellipse-like curves, prompting a discontinuous 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 a graphene/MoO3 heterostructure. Scanning near-field optical microscopy was used to image hybrid polaritons in graphene/MoO3. We demonstrate the topological transition and characterize the hybrid modes, studying their evolution from surface waves to bulk waveguide modes and the dependence of properties of hybrid polaritons on plasmon-phonon coupling strength. Graphene/MoO3 is an exciting platform for exploring dynamical topological transitions and directional plasmon-phonon coupling in nanophotonics.
–
Presenters
-
Frank L Ruta
Columbia University
Authors
-
Frank L Ruta
Columbia University
-
Brian S Kim
Columbia University
-
Zhiyuan Sun
Columbia Univ, Harvard University, Columbia University
-
Daniel J Rizzo
Columbia University
-
Alexander S McLeod
Columbia Univ, Columbia University
-
Anjaly Rajendran
Columbia University
-
Song Liu
Columbia University, Columbia University, US, Tim Taylor Department of Chemical Engineering, Kansas State University
-
Andrew J Millis
Columbia University, Columbia University; Flatiron Institute, Columbia University, Flatiron Institute
-
James C Hone
Columbia University
-
Dmitri N Basov
Columbia University