Lasing at the band edges of plasmonic lattices
A.Hinke Schokker, A. Femius Koenderink

TL;DR
This paper demonstrates room temperature lasing in plasmonic lattices of silver and gold particles, analyzing how metal properties influence band structure modifications and lasing thresholds.
Contribution
It provides the first detailed experimental mapping of band structures in plasmonic lattices and compares the effects of different metals on lasing behavior.
Findings
Silver lattices exhibit strongly modified band structures with large stop gaps.
Gold lattices have higher thresholds and less band structure modification.
Experimental results are supported by finite element and Fourier modal calculations.
Abstract
We report room temperature lasing in two-dimensional diffractive lattices of silver and gold plasmon particle arrays embedded in a dye-doped polymer that acts both as waveguide and gain medium. As compared to conventional dielectric distributed feedback lasers, a central question is how the underlying band structure from which lasing emerges is modified by both the much stronger scattering and the disadvantageous loss of metal. We use spectrally resolved back-focal plane imaging to measure the wavelength- and angle dependence of emission below and above threshold, thereby mapping the band structure. We find that for silver particles, the band structure is strongly modified compared to dielectric reference DFB lasers, since the strong scattering gives large stop gaps. In contrast, gold particles scatter weakly and absorb strongly, so that thresholds are higher, but the band structure is…
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Taxonomy
TopicsPlasmonic and Surface Plasmon Research · Gold and Silver Nanoparticles Synthesis and Applications · Photonic and Optical Devices
