Anderson Localization in Bi-layer Array with Compositional Disorder: Conventional Photonic Crystals versus Metamaterials
arXiv:0911.0966 · doi:10.1016/j.physb.2010.01.027
Abstract
The localization length has been derived for one-dimensional bi-layered structures with random perturbations in the refractive indices for each type of layers. Main attention is paid to the comparison between conventional materials and those consisting of mixed right-hand and left-hand materials. It is shown that the localization length is described by the universal expression for both cases. The analytical results are confirmed by numerical simulations.
4 pages, 2 figures; new figures and discussion, slightly corrected abstract
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Cited by in corpus (9)
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- Effects of polarization on the transmission and localization of classical waves in weakly scattering metamaterials
- Non-Conventional Anderson Localization in Bilayered Structures with Metamaterials
- Localization length of nearly periodic layered metamaterials
- Resonant enhancement of Anderson localization: Analytical approach
- Anderson Localization in Metamaterials with Compositional Disorder
- Non-conventional Anderson localization in a matched quarter stack with metamaterials