Engineering anisotropic electrodynamics at the graphene/CrSBr interface
Abstract
Abstract Graphene is a privileged 2D platform for hosting confined light-matter excitations known as surface plasmon polaritons (SPPs), as it possesses low intrinsic losses and a high degree of optical confinement. However, the isotropic nature of graphene limits its ability to guide and focus SPPs, making it less suitable than anisotropic elliptical and hyperbolic materials for polaritonic lensing and canalization. Here, we present graphene/CrSBr as an engineered 2D interface that hosts highly anisotropic SPP propagation across mid-infrared and terahertz energies. Using scanning tunneling microscopy, scattering-type scanning near-field optical microscopy, and first-principles calculations, we demonstrate mutual doping in excess of 1013 cm–2 holes/electrons between the interfacial layers of graphene/CrSBr. SPPs in graphene activated by charge transfer interact with charge-induced electronic anisotropy in the interfacial doped CrSBr, leading to preferential SPP propagation along the quasi-1D chains that compose each CrSBr layer. This multifaceted proximity effect both creates SPPs and endows them with anisotropic propagation lengths that differ by an order-of-magnitude between the in-plane crystallographic axes of CrSBr.
Article Details
Authors (27)
Daniel J. Rizzo
Eric Seewald
Department of Physics
Fangzhou Zhao
Department of Chemistry, McGill University, 801 Sherbrooke Street. W, Montreal, Quebec H3A0B8, Canada
Jordan Cox
Department of Chemistry
Kaichen Xie
Rocco A. Vitalone
Francesco L. Ruta
Daniel G. Chica
Department of Chemistry
Yinming Shao
Department of Physics
Sara Shabani
Evan J. Telford
Department of Chemistry
Matthew C. Strasbourg
Thomas P. Darlington
Suheng Xu
Siyuan Qiu
Department of Physics
Aravind Devarakonda
Takashi Taniguchi
Kenji Watanabe
Xiaoyang Zhu
Department of Chemistry
P. James Schuck
Cory R. Dean
Xavier Roy
Andrew J. Millis
Ting Cao
Angel Rubio
Abhay N. Pasupathy
D. N. Basov