Generalized Mie Theory for Full‐Wave Numerical Calculations of Scattering Near‐Field Optical Microscopy with Arbitrary Geometries

Author:

Datz Dániel1ORCID,Németh Gergely12,Rátkai László1,Pekker Áron1,Kamarás Katalin13

Affiliation:

1. Wigner Research Centre for Physics Institute for Solid State Physics and Optics Konkoly-Thege Miklós út 29-33, 1121, P.O. Box 49 H-1525 Budapest Hungary

2. L’Orme des Merisiers SOLEIL Synchrotron RD128 91190 Saint Aubin France

3. Centre for Energy Research Institute of Technical Physics and Materials Science P.O. Box 49 H-1525 Budapest Hungary

Abstract

Scattering‐type scanning near‐field optical microscopy (s‐SNOM) is becoming a premier method for the nanoscale optical investigation of materials well beyond the diffraction limit. A number of popular numerical methods exist to predict the near‐field contrast for axisymmetric configurations of scatterers on a surface in the quasi‐electrostatic approximation. Here, a fully electrodynamic approach is given for the calculation of near‐field contrast of several scatterers in arbitrary configuration, based on the generalized Mie scattering method. Examples for the potential of this new approach are given by showing the coupling of hyperbolic phonon polaritons in hexagonal boron nitride (hBN) layers and showing enhanced scattering in core–shell systems. In general, this method enables the numerical calculation of the near‐field contrast in a variety of strongly resonant scatterers and is able to accurately recreate spatial near‐field maps.

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

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