4.8 Article

Tunable subradiant lattice plasmons by out-of-plane dipolar interactions

Journal

NATURE NANOTECHNOLOGY
Volume 6, Issue 7, Pages 423-427

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/NNANO.2011.72

Keywords

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Funding

  1. National Science Foundation (NSF) [CMMI-0826219]
  2. NSF-MRSEC at Materials Research Center at Northwestern University [DMR-0520513]
  3. NSF-MRSEC
  4. NSF-NSEC
  5. Keck Foundation
  6. US Department of Energy, Office of Basic Energy Sciences [DE-AC02-06CH11357]
  7. Directorate For Engineering
  8. Div Of Civil, Mechanical, & Manufact Inn [0826219, 1069180] Funding Source: National Science Foundation

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Plasmonic nanostructures concentrate optical fields into nanoscale volumes(1,2,) which is useful for plasmonic nanolasers(3,4), surface enhanced Raman spectroscopy(5,6) and white-light generation(7). However, the short lifetimes of the emissive plasmons correspond to a rapid depletion of the plasmon energy, preventing further enhancement of local optical fields. Dark (subradiant) plasmons(8-12) have longer lifetimes, but their resonant wavelengths cannot be tuned over a broad wavelength range without changing the overall geometry of the nanostructures. Also, fabrication of the nanostructures cannot be readily scaled because their complex shapes have subwavelength dimensions. Here, we report a new type of subradiant plasmon with a narrow (similar to 5 nm) resonant linewidth that can be easily tuned by changing the height of large (>100 nm) gold nanoparticles arranged in a two-dimensional array. At resonance, strong coupling between out-of-plane nanoparticle dipolar moments suppresses radiative decay, trapping light in the plane of the array and strongly localizing optical fields on each nanoparticle. This new mechanism can open up applications for subradiant plasmons because height-controlled nanoparticle arrays can be manufactured over wafer-scale areas on a variety of substrates.

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