Mapping Nanoscale Hotspots with Single-Molecule Emitters Assembled into Plasmonic Nanocavities Using DNA Origami.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 29166033.
- Also identified by DOI 10.1021/acs.nanolett.7b04283 and PMC identifier 5806994.
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Abstract
Fabricating nanocavities in which optically active single quantum emitters are precisely positioned is crucial for building nanophotonic devices. Here we show that self-assembly based on robust DNA-origami constructs can precisely position single molecules laterally within sub-5 nm gaps between plasmonic substrates that support intense optical confinement. By placing single-molecules at the center of a nanocavity, we show modification of the plasmon cavity resonance before and after bleaching the chromophore and obtain enhancements of ≥4 × 10<sup>3</sup> with high quantum yield (≥50%). By varying the lateral position of the molecule in the gap, we directly map the spatial profile of the local density of optical states with a resolution of ±1.5 nm. Our approach introduces a straightforward noninvasive way to measure and quantify confined optical modes on the nanoscale.
Medical subject headings
- Carbocyanines
- DNA
- Fluorescent Dyes
- Gold
- Metal Nanoparticles
- Nanostructures