Metamaterial Van Hove Singularity
arXiv:1305.5857 · doi:10.1103/PhysRevB.88.045407
Abstract
We introduce the photonic analogue of electronic Van Hove singularities (VHS) in artificial media (metamaterials) with hyperbolic dispersion. Unlike photonic and electronic crystals, the VHS in metamaterials is unrelated to the underlying periodicity and occurs due to slow light modes in the structure. We show that the VHS characteristics are manifested in the near-field local density of optical states in spite of the losses, dispersion and finite unit cell size of the hyperbolic metamaterial. Finally we show that this work should lead to quantum, thermal, nano-lasing and biosensing applications of Van Hove singularities in hyperbolic metamaterials achievable by current fabrication technology.
10 pages, 5 figures
References in corpus (4)
- Broadband super-Planckian thermal emission from hyperbolic metamaterials
- Non-local effects in effective medium response of nano-layered meta-materials
- Slow-light enhanced light-matter interactions with applications to gas sensing
- High temperature plasmonics: Narrowband, tunable, near-field thermal sources
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