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I. E. Psarobas

Researcher at National and Kapodistrian University of Athens

Publications -  30
Citations -  1177

I. E. Psarobas is an academic researcher from National and Kapodistrian University of Athens. The author has contributed to research in topics: Scattering & Crystal. The author has an hindex of 14, co-authored 30 publications receiving 1113 citations. Previous affiliations of I. E. Psarobas include University of Ioannina & University of Patras.

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Scattering of elastic waves by periodic arrays of spherical bodies

TL;DR: In this article, the authors developed a formalism for the calculation of the frequency band structure of a phononic crystal consisting of nonoverlapping elastic spheres, characterized by Lam coefficients which may be complex and frequency dependent, arranged periodically in a host medium with different mass density and Lam coefficients.
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Classical vibrational modes in phononic lattices: theory and experiment

TL;DR: In this paper, a review of the physics of classical vibrational modes in phononic lattices is presented, which elaborates on the theo- ry, the formalism, the methods, and mainly on the numerical and experimental results related to phononic crystals.
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A layer-multiple-scattering method for phononic crystals and heterostructures of such

TL;DR: A computer program is presented to calculate the frequency band structure of an infinite phononic crystal, and the transmission, reflection and absorption of elastic waves by a slab of this crystal.
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Phononic crystals with planar defects

TL;DR: In this paper, the effect of planar defects in phononic crystal of spherical scatterers is studied and it is shown that a plane of impurity spheres introduces modes of vibration of the elastic field localized on this plane at frequencies within a frequency gap of a pure phononic surface.
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Enhanced acousto-optic interactions in a one-dimensional phoxonic cavity

TL;DR: In this paper, the occurrence of strong nonlinear acousto-optic interactions in a one-dimensional model phoxonic cavity that supports, simultaneously, photonic and phononic localized resonant modes, by means of rigorous electrodynamic and elastodynamic calculations is reported.