Multipolar Decomposition of Magnetic Circular Dichroism in Arbitrarily Shaped Magneto-Dielectric Scatterers
Jhon James Hern\'andez-Sarria, Jo\~ao Paulo Silva Dias, Luciano Leonel Mendes, Nicol\`o Maccaferri, Osvaldo N. Oliveira Jr., and Jorge Ricardo Mej\'ia-Salazar

TL;DR
This paper develops a multipolar expansion framework to analyze electromagnetic scattering from magnetic dielectric particles of arbitrary shape, enabling detailed decomposition of magnetic circular dichroism into multipole contributions.
Contribution
It introduces an analytical multipole decomposition method for magnetic dielectric scatterers, extending traditional techniques to include magnetic effects and arbitrary geometries.
Findings
Magnetic circular dichroism can be decomposed into multipole contributions.
Magnetization currents can produce stronger resonances than dielectric currents.
Analytical results agree with FEM simulations.
Abstract
Multipole expansion methods have been primarily used for analyzing the electromagnetic scattering from non-magnetic isotropic dielectric scatterers, and studies about the scattering from magnetic objects seem to be lacking. In this work, we used the multipolar expansion framework for decomposing the electromagnetic scattering by dielectric particles with magnetic properties. Magnetization current contributions were explicitly accounted for by using the vector spherical harmonics to compute the electric and magnetic multipole contributions of arbitrary order. The exact analytical expressions for the corresponding spherical multipole coefficients were employed, with the scattering efficiencies being used to distinguish the dielectric and magnetic contributions of each multipole. This enables the analysis of scattering from arbitrarily shaped, anisotropic, and inhomogeneous magnetic…
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