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Journal article

DNA-Assembled Plasmonic Waveguides for Nanoscale Light Propagation to a Fluorescent Nanodiamond

From

Technische Universität Dresden1

King's College London2

Department of Micro- and Nanotechnology, Technical University of Denmark3

Optofluidics, Department of Micro- and Nanotechnology, Technical University of Denmark4

Stanford University5

Plasmonic waveguides consisting of metal nanoparticle chains can localize and guide light well below the diffraction limit, but high propagation losses due to lithography-limited large interparticle spacing have impeded practical applications. Here, we demonstrate that DNA-origami-based self-assembly of monocrystalline gold nanoparticles allows the interparticle spacing to be decreased to ∼2 nm, thus reducing propagation losses to 0.8 dB per 50 nm at a deep subwavelength confinement of 62 nm (∼ /10).

We characterize the individual waveguides with nanometer-scale resolution by electron energy-loss spectroscopy. Light propagation toward a fluorescent nanodiamond is directly visualized by cathodoluminescence imaging spectroscopy on a single-device level, thereby realizing nanoscale light manipulation and energy conversion.

Simulations suggest that longitudinal plasmon modes arising from the narrow gaps are responsible for the efficient waveguiding. With this scalable DNA origami approach, micrometer-long propagation lengths could be achieved, enabling applications in information technology, sensing, and quantum optics.

Language: English
Publisher: American Chemical Society
Year: 2018
Pages: 7323-7329
ISSN: 15306992 and 15306984
Types: Journal article
DOI: 10.1021/acs.nanolett.8b03524
ORCIDs: 0000-0003-3093-9329 , 0000-0001-6002-9735 , Raza, Søren , 0000-0002-6733-6663 , 0000-0003-1777-8970 , 0000-0002-8852-8752 and 0000-0002-6798-5241

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