Surface plasmon-phonon-magnon polariton in a topological insulator-antiferromagnetic bilayer structure
D. Quang To, Zhengtianye Wang, Yongchen Liu, Weipeng Wu, M. Benjamin, Jungfleisch, John Q. Xiao, Joshua M.O. Zide, Stephanie Law, and Matthew F., Doty

TL;DR
This paper introduces a computational method to study surface polariton modes in hybrid topological insulator-antiferromagnetic structures, revealing hybridized excitations, their dispersion relations, and conditions for strong coupling.
Contribution
It develops a semi-classical scattering and transfer matrix method to analyze surface polaritons in complex heterostructures, applied specifically to TI-AFM systems for the first time.
Findings
Hybridized modes form due to interactions between excitations.
Avoided-crossing points in dispersion relations indicate strong coupling.
Material quality and layer thickness critically influence observable hybridization.
Abstract
We present a robust technique for computationally studying surface polariton modes in hybrid materials. We use a semi-classical model that allows us to understand the physics behind the interactions between collective excitations of the hybrid system and develop a scattering and transfer matrix method that imposes the proper boundary conditions to solve Maxwell equations and derive a general equation describing the surface polariton in a heterostructure consisting of N constituent materials. We apply this method to a test structure composed of a topological insulator (TI) and an antiferromagnetic material (AFM) to study the resulting surface Dirac plasmon-phonon-magnon polariton (DPPMP). We find that interactions between the excitations of the two constituents result in the formation of hybridized modes and the emergence of avoided-crossing points in the dispersion relations for the…
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