4.8 Article

Super-resolution Mapping of Enhanced Emission by Collective Plasmonic Resonances

期刊

ACS NANO
卷 13, 期 4, 页码 4514-4521

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.9b00132

关键词

nanophotonics; light-matter interaction; plasmonics; collective resonances; super-resolution microscopy; single molecule localization

资金

  1. Netherlands Organisation for Scientific Research (NWO Vidi Award) [680-47-550]
  2. Netherlands Organisation for Scientific Research (NWO Vici Award) [680-47-628]
  3. Netherlands Organisation for Scientific Research (NWO-Signify Industrial Partnership Programme Nanophotonics for solid-state lighting)
  4. Netherlands Organisation for Scientific Research (NWO Gravitation Programme Research Centre for Integrated Nanophotonics)

向作者/读者索取更多资源

Plasmonic particle arrays have remarkable optical properties originating from their collective behavior, which results in resonances with narrow line widths and enhanced electric fields extending far into the surrounding medium. Such resonances can be exploited for applications in strong light-matter coupling, sensing, light harvesting, nonlinear nanophotonics, lasing, and solid-state lighting. However, as the lattice constants associated with plasmonic particle arrays are on the order of their resonance wavelengths, mapping the interaction between point dipoles and plasmonic particle arrays cannot be done with diffraction-limited methods. Here, we map the enhanced emission of single fluorescent molecules coupled to a plasmonic particle array with similar to 20 nm in-plane resolution by using stochastic super-resolution microscopy. We find that extended lattice resonances have minimal influence on the spontaneous decay rate of an emitter but instead can be exploited to enhance the outcoupling and directivity of the emission. Our results can guide the rational design of future optical devices based on plasmonic particle arrays.

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