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Controlling Single-Emitter Strong Coupling by Sculpting DNA Dye Scaffolds in NPoM Cavities

Accepted version
Peer-reviewed

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Abstract

Coherent coupling of light and single-molecules enables the development of next-generation room-temperature-capable nanophotonics devices. Small mode-volume optical fields can be achieved with plasmonics, but challenges remain in placing oriented emitter molecules inside plasmonic cavities to access strong coupling consistently in emission. Using DNA origami, single-emitter molecules can be aligned inside sub-nanometric cavities created between a gold nanoparticle and gold mirror. We observe that the exact design of DNA scaffolding architecture surrounding a cyanine dye changes how its emission couples to the nanocavity, as well as how Au atoms respond to the optical forces, leading to continuous tuning of the dominant plasmonic mode. Through this, we show how strong coupling between three different dyes and the plasmon resonance always leads to low energy light emission, independent of detuning.

Description

Journal Title

The Journal of Physical Chemistry C

Conference Name

Journal ISSN

1932-7447
1932-7455

Volume Title

Publisher

American Chemical Society (ACS)

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Except where otherwised noted, this item's license is described as Attribution 4.0 International
Sponsorship
European Commission Horizon 2020 (H2020) ERC (883703)
EPSRC (EP/Y008162/1)
Engineering and Physical Sciences Research Council (EP/L015978/1)
EPSRC (EP/X037770/1)
Horizon Europe UKRI Underwrite ERC (EP/Y036379/1)