Hyperbolic metamaterials: nonlocal response regularizes broadband super-singularity
arXiv:1204.5413 · doi:10.1103/PhysRevB.86.205429
Abstract
We study metamaterials known as hyperbolic media that in the usual local-response approximation exhibit hyperbolic dispersion and an associated broadband singularity in the density of states. Instead, from the more microscopic hydrodynamic Drude theory we derive qualitatively different optical properties of these metamaterials, due to the free-electron nonlocal optical response of their metal constituents. We demonstrate that nonlocal response gives rise to a large-wavevector cutoff in the dispersion that is inversely proportional to the Fermi velocity of the electron gas, but also for small wavevectors we find differences for the hyperbolic dispersion. Moreover, the size of the unit cell influences effective parameters of the metamaterial even in the deep sub-wavelength regime. Finally, instead of the broadband super-singularity in the local density of states, we predict a large but finite maximal enhancement proportional to the inverse cube of the Fermi velocity.
9 pages including 4 figures. Accepted for PRB
References in corpus (2)
Cited by in corpus (8)
- Nonlocal optical response in metallic nanostructures
- Nonlocal Response of Metallic Nanospheres Probed by Light, Electrons, and Atoms
- From surface to volume plasmons in hyperbolic metamaterials: General existence conditions for bulk high-k waves in metal-dielectric and graphene-dielectric multilayers
- Near-field heat transfer between multilayer hyperbolic metamaterials
- Near-perfect absorption in epsilon-near-zero structures with hyperbolic dispersion
- Theory of hyperbolic stratified nanostructures for surface enhanced Raman scattering
- Self-consistent Purcell factor and spontaneous topological transition in hyperbolic metamaterials
- Graphene plasmon polaritons: Substrate effects and nonlocal response