Anisotropic Metamaterial Optical Fibers
arXiv:1411.7779 · doi:10.1364/OE.23.009074
Abstract
Internal physical structure can drastically modify the properties of waveguides: photonic crystal fibers are able to confine light inside a hollow air core by Bragg scattering from a periodic array of holes, while metamaterial loaded waveguides for microwaves can support propagation at frequencies well below cutoff. Anisotropic metamaterials assembled into cylindrically symmetric geometries constitute light-guiding structures that support new kinds of exotic modes. A microtube of anodized nanoporous alumina, with nanopores radially emanating from the inner wall to the outer surface, is a manifestation of such an anisotropic metamaterial optical fiber. The nanopores, when filled with a plasmonic metal such as silver or gold, greatly increase the electromagnetic anisotropy. The modal solutions in anisotropic circular waveguides can be uncommon Bessel functions with imaginary orders.
15 pages, 5 figures; Published
References in corpus (4)
Cited by in corpus (3)
- Experimental Verification of Below-Cutoff Propagation in Miniaturized Circular Waveguides Using Anisotropic ENNZ Metamaterial Liners
- Higher-Order Spectral Element Methods for Electromagnetic Modeling of Complex Anisotropic Waveguides
- Nanoporous alumina microtubes for metamaterial and plasmonic applications