Plasmonic Luneburg and Eaton Lenses
arXiv:1101.2493 · doi:10.1038/NNANO.2010.282
Abstract
Plasmonics is an interdisciplinary field focusing on the unique properties of both localized and propagating surface plasmon polaritons (SPPs) - quasiparticles in which photons are coupled to the quasi-free electrons of metals. In particular, it allows for confining light in dimensions smaller than the wavelength of photons in free space, and makes it possible to match the different length scales associated with photonics and electronics in a single nanoscale device. Broad applications of plasmonics have been realized including biological sensing, sub-diffraction-limit imaging, focusing and lithography, and nano optical circuitry. Plasmonics-based optical elements such as waveguides, lenses, beam splitters and reflectors have been implemented by structuring metal surfaces or placing dielectric structures on metals, aiming to manipulate the two-dimensional surface plasmon waves. However, the abrupt discontinuities in the material properties or geometries of these elements lead to increased scattering of SPPs, which significantly reduces the efficiency of these components. Transformation optics provides an unprecedented approach to route light at will by spatially varying the optical properties of a material. Here, motivated by this approach, we use grey-scale lithography to adiabatically tailor the topology of a dielectric layer adjacent to a metal surface to demonstrate a plasmonic Luneburg lens that can focus SPPs. We also realize a plasmonic Eaton lens that can bend SPPs. Since the optical properties are changed gradually rather than abruptly in these lenses, losses due to scattering can be significantly reduced in comparison with previously reported plasmonic elements.
Accepted for publication in Nature Nanotechnology
References in corpus (1)
Cited by in corpus (11)
- Conformal optical black hole for cavity
- Simple and Complex Metafluids and Metastructures with Sharp Spectral Features in a Broad Extinction Spectrum: Particle-Particle Interactions and Testing the Limits of the Beer-Lambert Law
- Gravitational parameter estimation in a waveguide
- Universal behavior of dispersive Dirac cone in gradient-index plasmonic metamaterials
- Polariton microfluidics for nonreciprocal dragging and reconfigurable shaping of polaritons
- Unidirectional Curved Surface Plasmon Polariton in a Radially Magnetized System
- Sound Reception System by an Acoustic Luneburg Lens
- Active spatial control of terahertz graphene plasmons by tailoring carrier density profile
- Subwavelength focusing of all-dielectric surface waves
- Dielectric Optical-Controlled Magnifying Lens by Nonlinear Negative Refraction
- Two-dimensional Inside-out Eaton Lens: Wave Properties and Design