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Cascaded nanooptics to probe microsecond atomic-scale phenomena

Authors :
Jack Griffiths
Jeremy J. Baumberg
Bart de Nijs
Oren A. Scherman
Junyang Huang
Steven J. Barrow
William M. Deacon
Matthias Saba
Demelza Wright
Marlous Kamp
Oluwafemi Stephen Ojambati
Charlie Readman
Ortwin Hess
Nuttawut Kongsuwan
Rohit Chikkaraddy
Kamp, Marlous [0000-0003-4915-1312]
de Nijs, Bart [0000-0002-8234-723X]
Kongsuwan, Nuttawut [0000-0002-8037-3100]
Chikkaraddy, Rohit [0000-0002-3840-4188]
Readman, Charlie A [0000-0001-9743-9180]
Huang, Junyang [0000-0001-6676-495X]
Hess, Ortwin [0000-0002-6024-0677]
Scherman, Oren A [0000-0001-8032-7166]
Baumberg, Jeremy J [0000-0002-9606-9488]
Apollo - University of Cambridge Repository
Source :
Proc Natl Acad Sci U S A
Publication Year :
2020
Publisher :
National Academy of Sciences, 2020.

Abstract

Plasmonic nanostructures can focus light far below the diffraction limit, and the nearly thousandfold field enhancements obtained routinely enable few- and single-molecule detection. However, for processes happening on the molecular scale to be tracked with any relevant time resolution, the emission strengths need to be well beyond what current plasmonic devices provide. Here, we develop hybrid nanostructures incorporating both refractive and plasmonic optics, by creating SiO 2 nanospheres fused to plasmonic nanojunctions. Drastic improvements in Raman efficiencies are consistently achieved, with (single-wavelength) emissions reaching 10 7 counts⋅mW −1 ⋅s −1 and 5 × 10 5 counts∙mW −1 ∙s −1 ∙molecule −1 , for enhancement factors >10 11 . We demonstrate that such high efficiencies indeed enable tracking of single gold atoms and molecules with 17-µs time resolution, more than a thousandfold improvement over conventional high-performance plasmonic devices. Moreover, the obtained (integrated) megahertz count rates rival (even exceed) those of luminescent sources such as single-dye molecules and quantum dots, without bleaching or blinking.

Details

Language :
English
Database :
OpenAIRE
Journal :
Proc Natl Acad Sci U S A
Accession number :
edsair.doi.dedup.....8fd09676b7be1faf30017cbf0785182c