Optical Properties of Layered Superconductors near the Josephson Plasma Resonance
arXiv:cond-mat/0207491 · doi:10.1103/PhysRevB.66.094514
Abstract
We study the optical properties of crystals with spatial dispersion and show that the usual Fresnel approach becomes invalid near frequencies where the group velocity of the wave packets inside the crystal vanishes. Near these special frequencies the reflectivity depends on the atomic structure of the crystal provided that disorder and dissipation are very low. This is demonstrated explicitly by a detailed study of layered superconductors with identical or two different alternating junctions in the frequency range near the Josephson plasma resonance. Accounting for both inductive and charge coupling of the intrinsic junctions, we show that multiple modes are excited inside the crystal by the incident light, determine their relative amplitude by the microscopic calculation of the additional boundary conditions and finally obtain the reflectivity. Spatial dispersion also provides a novel method to stop light pulses, which has possible applications for quantum information processing and the artificial creation of event horizons in a solid.
25 pages, 20 figures, submitted to Phys. Rev. B
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- Self-induced tunable transparency in layered superconductors
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- Self-induced THz-waves transmissivity of waveguides with finite-length layered superconductors
- Josephson surface plasmons in spatially confined cuprate superconductors
- Optical Resonances in Reflectivity near Crystal Modes with Spatial Dispersion
- Field Dependence of the Josephson Plasma Resonance in Layered Superconductors with Alternating Junctions
- Optical absorption in tilted geometries as an indirect measurement of longitudinal plasma waves in layered cuprates
- Charge density response in layered metals: retardation effects, generalized plasma waves and their spectroscopic signatures
- Electronic compressibility and charge imbalance relaxation in cuprate superconductors
- Effect of Charge-neutrality Breaking on Localized Terahertz Waves in a Plate of Layered Superconductor