This paper reports how geometric effects in low-symmetry plasmonic nanoparticle arrays can produce polarization-dependent lasing responses. We developed a scalable fabrication procedure to pattern rhombohedral arrays of aluminum anisotropic nanoparticles that support lattice plasmon modes from both first-order and second-order diffraction coupling. We found that nanoparticle shape can be used to engineer the spatial overlap between electromagnetic hot spots of different lattice modes and dye gain to support plasmonic lasing. The lasing behavior revealed that plasmon–exciton energy transfer depends on polarization, with stronger coupling and faster dynamics when the transition dipole moments of the excited gain are aligned with the electric ...
Metallic nanostructures provide a toolkit for the generation of coherent light below the diffraction...
Plasmonic nanoarrays which support collective surface lattice resonances (SLRs) have become an excit...
Funding Information: We acknowledge Academy of Finland Flagship Programme, Photonics Research and In...
Plasmonic nanolasers have ultrahigh lasing thresholds, especially those devices for which all three ...
Lattice plasmon lasers demonstrated to have many degrees of freedom useful to tailor the lasing prop...
International audienceLattice modes have been proposed as a means to engineer and control the linewi...
The assemblies of metal nanoparticles, thanks to their intriguing plasmonic properties, have provide...
A metallic nanoparticle array with a periodicity comparable to the single particle resonance can sho...
Lasing in organic media with very low gain has been pursued for a long time in optoelectronics. Here...
Periodic dielectric structures are typically integrated with a planar waveguide to create photonic b...
Developing intense, coherent and ultra-fast light sources with nanoscale dimensions is a crucial iss...
We study lasing in regular arrays made from aluminum nanoparticles. We show that these structures fu...
International audiencePeriodic arrays of proximate but noncontacting noble metal nanoparticles provi...
We study beaming properties of laser light produced by a plasmonic lattice overlaid with organic flu...
Plasmonic nanolasers produce coherent light with wavelengths on a scale similar to their own or larg...
Metallic nanostructures provide a toolkit for the generation of coherent light below the diffraction...
Plasmonic nanoarrays which support collective surface lattice resonances (SLRs) have become an excit...
Funding Information: We acknowledge Academy of Finland Flagship Programme, Photonics Research and In...
Plasmonic nanolasers have ultrahigh lasing thresholds, especially those devices for which all three ...
Lattice plasmon lasers demonstrated to have many degrees of freedom useful to tailor the lasing prop...
International audienceLattice modes have been proposed as a means to engineer and control the linewi...
The assemblies of metal nanoparticles, thanks to their intriguing plasmonic properties, have provide...
A metallic nanoparticle array with a periodicity comparable to the single particle resonance can sho...
Lasing in organic media with very low gain has been pursued for a long time in optoelectronics. Here...
Periodic dielectric structures are typically integrated with a planar waveguide to create photonic b...
Developing intense, coherent and ultra-fast light sources with nanoscale dimensions is a crucial iss...
We study lasing in regular arrays made from aluminum nanoparticles. We show that these structures fu...
International audiencePeriodic arrays of proximate but noncontacting noble metal nanoparticles provi...
We study beaming properties of laser light produced by a plasmonic lattice overlaid with organic flu...
Plasmonic nanolasers produce coherent light with wavelengths on a scale similar to their own or larg...
Metallic nanostructures provide a toolkit for the generation of coherent light below the diffraction...
Plasmonic nanoarrays which support collective surface lattice resonances (SLRs) have become an excit...
Funding Information: We acknowledge Academy of Finland Flagship Programme, Photonics Research and In...