Title :
Slow and stopped-light lasing in active plasmonic metamaterials
Author :
Tsakmakidis, Kosmas L. ; Hess, Ortwin
Author_Institution :
Dept. of Phys., Imperial Coll. London, London, UK
Abstract :
We outline recent advances in active gain-enhanced plasmonic metamaterials revealing and elucidating the inherent complex interplay of light, surface plasmon polaritons and gain materials to allow a compensation of dissipative losses in negative-refractive-index optical metamaterials and to achieve net steady-state amplification and nanoscopic lasing over a broad but ultrathin area. On the basis of a fully 3-dimensional Maxwell-Bloch Langevin approach we then demonstrate that in a suitably designed gain-enhanced plasmonic/metamaterial heterostructure light pulses can be completely stopped at well-accessed complex-frequency zero-group-velocity points leading to thresholdless nanolasers that beat the diffraction limit via a novel, stopped-light mode-locking mechanism.
Keywords :
Maxwell equations; metamaterials; plasmonics; polaritons; slow light; surface plasmons; 3-dimensional Maxwell-Bloch Langevin; dissipative losses; gain-enhanced plasmonic/metamaterial heterostructure light pulses; nanolasers; nanoscopic lasing; negative-refractive-index optical metamaterials; plasmonic metamaterials; slow-light lasing; stopped-light lasing; surface plasmon polaritons; Integrated optics; Lasers; Metamaterials; Optical losses; Plasmons; Steady-state; Stimulated emission; guided waves; laser theory; metamaterials; optical amplifiers; plasmonics; ultrafast lasers;
Conference_Titel :
Transparent Optical Networks (ICTON), 2012 14th International Conference on
Conference_Location :
Coventry
Print_ISBN :
978-1-4673-2228-7
Electronic_ISBN :
2161-2056
DOI :
10.1109/ICTON.2012.6254439