Plasmonic lasers generate strongly confined electromagnetic fields over a narrow range of wavelengths. This is potentially useful for enhancing nonlinear effects, sensing chemical species, and providing on-chip sources of plasmons. By placing a semiconductor gain layer near a metallic interface with a gap layer in between, plasmonic lasers have been demonstrated. However, the role of gain in this common design has been understudied, leading to suboptimal choices. Here, we examine planar metallic lasers and explore the effect of gain on the lasing behavior. We print semiconductor nanoplatelets as a gain layer of controllable thickness onto alumina-coated silver films with integrated planar Fabry–Pérot cavities. Lasing behavior is then monito...
In this Letter, we report on the design criteria of plasmonic nano-lasers based on hybrid waveguides...
The potential of a plasmonic nanolaser using semiconductor gain to compensate the metal loss was inv...
As miniaturized light sources of size beyond the optical diffraction limit, surface plasmon lasers a...
Plasmonic lasers generate strongly confined electromagnetic fields over a narrow range of wavelength...
Plasmonic lasers are the plasmonic analog to conventional lasers. They coherently amplify surface pl...
Plasmonic modes in optical cavities can be amplified through stimulated emission. Using this effect,...
Design of cylindrical metal-clad semiconductor nano-lasers is undertaken. Specific attention is give...
Surface plasmons (SPs) are surface waves at the interface between a dielectric and a good metal, a...
Surface plasmons in metal hole arrays have been studied extensively in the context of extraordinary ...
The aim of plasmonics is to exploit the strong coupling between photons and collective electron osc...
Unlike conventional dielectric photonic structures, metal coated or plasmonic structures can confine...
The pursuit of miniaturized optical sources for on-chip applications has led to the development of s...
Single-mode surface plasmon distributed feedback (DFB) lasers are realized in the near infrared usin...
Laser science has tackled physical limitations to achieve higher power, faster and smaller light sou...
Copyright © 2006 IOP Publishing Ltd and Deutsche Physikalische Gesellschaft. This is the published v...
In this Letter, we report on the design criteria of plasmonic nano-lasers based on hybrid waveguides...
The potential of a plasmonic nanolaser using semiconductor gain to compensate the metal loss was inv...
As miniaturized light sources of size beyond the optical diffraction limit, surface plasmon lasers a...
Plasmonic lasers generate strongly confined electromagnetic fields over a narrow range of wavelength...
Plasmonic lasers are the plasmonic analog to conventional lasers. They coherently amplify surface pl...
Plasmonic modes in optical cavities can be amplified through stimulated emission. Using this effect,...
Design of cylindrical metal-clad semiconductor nano-lasers is undertaken. Specific attention is give...
Surface plasmons (SPs) are surface waves at the interface between a dielectric and a good metal, a...
Surface plasmons in metal hole arrays have been studied extensively in the context of extraordinary ...
The aim of plasmonics is to exploit the strong coupling between photons and collective electron osc...
Unlike conventional dielectric photonic structures, metal coated or plasmonic structures can confine...
The pursuit of miniaturized optical sources for on-chip applications has led to the development of s...
Single-mode surface plasmon distributed feedback (DFB) lasers are realized in the near infrared usin...
Laser science has tackled physical limitations to achieve higher power, faster and smaller light sou...
Copyright © 2006 IOP Publishing Ltd and Deutsche Physikalische Gesellschaft. This is the published v...
In this Letter, we report on the design criteria of plasmonic nano-lasers based on hybrid waveguides...
The potential of a plasmonic nanolaser using semiconductor gain to compensate the metal loss was inv...
As miniaturized light sources of size beyond the optical diffraction limit, surface plasmon lasers a...