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JOURNALS // Optics and Spectroscopy // Archive

Optics and Spectroscopy, 2018 Volume 124, Issue 2, Pages 241–249 (Mi os1077)

This article is cited in 5 papers

Physical optics

An ellipsoidal model for small multilayer particles

V. G. Farafonova, V. I. Ustimova, V. B. Il'inabc, M. V. Sokolovskayaa

a St. Petersburg State University of Aerospace Instrumentation, St. Petersburg, 190000, Russia
b Pulkovo Astronomical Observatory, Russian Academy of Sciences, St. Petersburg, 196140, Russia
c Saint Petersburg State University, St. Petersburg, 199034, Russia

Abstract: This paper presents an ellipsoidal model that is constructed for small layered nonspherical particles and methods for constructing “effective” multilayer ellipsoids, the light-scattering properties of which would be close to the corresponding properties of original particles. In the case of axisymmetric particles, prolate or oblate spheroids (ellipsoids of revolution) are implied. Numerical calculations of the polarizability and scattering cross sections of small layered nonspherical particles, including nonconfocal (similar) spheroids, Chebyshev particles, and pseudospheroids, are performed by different approximate and rigorous methods. Approximate approaches involve the use of an ellipsoidal model, in which the polarizability of a layered particle is determined in two ways. In the first case, the polarizability is calculated in the approximation of confocal spheroids, while, in the second case, it is sought as a linear combination of the polarizabilities of embedded spheroids proportionally to the volumes of layers. Among rigorous methods, the extended boundary conditions method and the generalized separation of variables method are applied. On the basis of a comparison of the results obtained with rigorous and approximate approaches, their drawbacks and advantages are discussed.

Received: 22.09.2017

DOI: 10.21883/OS.2018.02.45531.187-17


 English version:
Optics and Spectroscopy, 2018, 124:2, 237–246

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© Steklov Math. Inst. of RAS, 2025