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research article

Cartesian and spherical multipole expansions in anisotropic media

Le Boudec, Elias  
•
Chaumont Behrs, Toma  
•
Rachidi-Haeri, Farhad  
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February 28, 2025
Communications Physics

The multipole expansion, a ubiquitous tool in a variety of physical problems, can be formulated in spherical and Cartesian coordinates. By constructing an explicit map linking both formulations in isotropic media, we discover a lack of equivalence between both approaches in anisotropic media. In isotropic media, the Cartesian multipole tensor can be reduced to a spherical tensor containing significantly fewer entries. In anisotropic media, however, the loss of propagation symmetry prevents this reduction. In turn, non-harmonic sources radiate fields that can be projected onto a finite set of Cartesian multipole moments but require (possibly infinitely) many spherical moments. For harmonic sources, the link between both approaches presents a systematic way to construct the spherical multipole expansion from the Cartesian one. The lack of equivalence between both approaches results in physically significant effects wherever the field propagation includes the Laplace operator. We illustrate this issue on an electromagnetic radiation inverse problem in anisotropic media, including an analysis of a large-anisotropy regime. We show that the use of the Cartesian approach significantly increases the efficiency and interpretability of the model. The proposed approach opens the door to wider applications of the multipole expansion in anisotropic media, whose importance is rising in multiple physical systems.

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Type
research article
DOI
10.1038/s42005-025-01988-4
Author(s)
Le Boudec, Elias  

EPFL

Chaumont Behrs, Toma  

EPFL

Rachidi-Haeri, Farhad  

EPFL

Rubinstein, Marcos  

HES-SO University of Applied Sciences and Arts Western Switzerland

Vega, Felix  

Technology Innovation Institute

Date Issued

2025-02-28

Publisher

Springer Science and Business Media LLC

Published in
Communications Physics
Volume

8

Issue

1

Article Number

84

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SCI-STI-FR  
FunderFunding(s)Grant NumberGrant URL

Technology Innovation Institute

Available on Infoscience
March 3, 2025
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/240819.4
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