DocumentCode
1713909
Title
Effective response of metasurfaces: From periodical to random structures
Author
Albooyeh, M. ; Morits, D. ; Tretyakov, S.
Author_Institution
Sch. of Electr. Eng., Aalto Univ., Aalto, Finland
fYear
2012
Firstpage
87
Lastpage
88
Abstract
In this presentation we discuss the results of our recent theoretical studies of electromagnetic reflection, transmission, and scattering properties of periodic and random arrays of particles which exhibit both electric-mode and magnetic-mode resonances. We compare the properties of regular and random grids and explain recently observed dramatic differences in resonance broadening in the electric and magnetic modes of random arrays. We show that randomness in the particle positioning influences equally on the scattering loss from both electric and magnetic dipoles, however, the observed resonance broadening can be very different depending on the absorption level in different modes as well as on the average electrical distance between the particles. The theory is illustrated by an example of a planar metasurface composed of cut-wire pairs. We show that in this particular case at the magnetic resonance the array response is almost not affected by positioning randomness due to lower frequency and higher absorption losses in that mode. The developed model allows predictions of behavior of random grids based on the knowledge of polarizabilities of single paticles. The study is relevant to understanding of electromagnetic response of complex composite layers, especially manufactured using self-assembly techniques.
Keywords
electromagnetic wave absorption; electromagnetic wave polarisation; electromagnetic wave reflection; electromagnetic wave scattering; electromagnetic wave transmission; magnetic moments; self-assembly; absorption level loss; average electrical distance; complex composite layer; cut-wire pair; electric dipole; electric-mode resonance; electromagnetic reflection property; electromagnetic scattering property; electromagnetic transmission property; magnetic dipole; magnetic-mode resonances; particle positioning; planar metasurface; random particle array; resonance broadening; self-assembly technique; single particle polarization; Amorphous magnetic materials; Educational institutions; Magnetic resonance; Metamaterials; Scattering;
fLanguage
English
Publisher
ieee
Conference_Titel
Electromagnetics in Advanced Applications (ICEAA), 2012 International Conference on
Conference_Location
Cape Town
Print_ISBN
978-1-4673-0333-0
Type
conf
DOI
10.1109/ICEAA.2012.6328593
Filename
6328593
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