AI Article Synopsis

  • Researchers have developed plasmonic helical gratings made from metallic nanowires with helical grooves to produce plasmonic vortices that are significantly smaller than their operating wavelength.
  • These gratings allow for the generation of optical plasmonic vortices with varying topological charges by phase-matching different plasmon modes.
  • The study demonstrates that, despite some energy loss, it's possible to convert a basic plasmonic state into higher charge states with up to 60% efficiency, potentially paving the way for innovative applications in manipulating angular momentum at the nanoscale.

Article Abstract

We demonstrate that plasmonic helical gratings consisting of metallic nanowires imprinted with helical grooves or ridges can be used efficiently to generate plasmonic vortices with radius much smaller than the operating wavelength. In our proposed approach, these helical surface gratings are designed so that plasmon modes with different azimuthal quantum numbers (topological charge) are phase-matched, thus allowing one to generate optical plasmonic vortices with arbitrary topological charge. The general principles for designing plasmonic helical gratings that facilitate efficient generation of such plasmonic vortices are derived and their applicability to the conversion of plasmonic vortices with zero angular momentum into plasmonic vortices with arbitrary angular momentum is illustrated in several particular cases. Our analysis, based both on the exact solutions for the electromagnetic field propagating in the helical plasmonic grating and a coupled-mode theory, suggests that even in the presence of metal losses the fundamental mode with topological charge m = 0 can be converted to plasmon vortex modes with topological charge m = 1 and m = 2 with a conversion efficiency as large as 60%. The plasmonic nanovortices introduced in this study open new avenues for exciting applications of orbital angular momentum in the nanoworld.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4538392PMC
http://dx.doi.org/10.1038/srep13089DOI Listing

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