Advanced Photonics, Volume. 1, Issue 4, 046003(2019)
Ghost resonance in anisotropic materials: negative refractive index and evanescent field enhancement in lossless media
Fig. 1. (a) The schematics of the metal-clad waveguide with the core formed by a biaxial anisotropic dielectric material and (b) the corresponding standing wave pattern formed by the interference of several beams incident onto a slab of the biaxial anisotropic dielectric. Green color in (a) and (b) represents the anisotropic dielectric, whereas the gray region in (a) corresponds to the metallic cladding of the waveguide. For the wavevectors indicated in (b),
Fig. 2. The dispersion diagrams for the waves supported by sodium nitrite
Fig. 3. The
Fig. 4. Evanescent field enhancement at the ghost resonance in the (a) waveguide and (b) slab geometry. Green region represents the biaxial anisotropic dielectric, blue is the surrounding dielectric medium, and orange is the high-index prism coupler. (c) The
Fig. 5. The frequency spectrum of the “transmitted” field
Fig. 6. (a) The schematic of the coordinate system used in the slab geometry of
Fig. 7. The evolution of the electromagnetic field in the slab geometry of
Fig. 8. The surface state profile at the interface of isotropic dielectric (
Fig. 9. The modulus of the electric field component
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Evgenii Narimanov, "Ghost resonance in anisotropic materials: negative refractive index and evanescent field enhancement in lossless media," Adv. Photon. 1, 046003 (2019)
Category: Research Articles
Received: May. 31, 2019
Accepted: Jul. 25, 2019
Posted: Jul. 26, 2019
Published Online: Aug. 26, 2019
The Author Email: Narimanov Evgenii (evgenii@purdue.edu)