R. Margoth Córdova‐Castro
Mode Engineering in Large Arrays of Coupled Plasmonic–Dielectric Nanoantennas
Córdova‐Castro, R. Margoth; Krasavin, Alexey V.; Nasir, Mazhar E.; Wang, Pan; Bouillard, Jean Sebastien G.; McPolin, Cillian P. T.; Zayats, Anatoly V.
Authors
Alexey V. Krasavin
Mazhar E. Nasir
Pan Wang
Dr Jean-Sebastien Bouillard J.Bouillard@hull.ac.uk
Senior Lecturer in Physics and Nanotechnology
Cillian P. T. McPolin
Anatoly V. Zayats
Abstract
Strong electromagnetic field confinement and enhancement can be readily achieved in plasmonic nanoantennas, however, this is considerably more difficult to realize over large areas, which is essential for many applications. Here, dispersion engineering in plasmonic metamaterials is applied to successfully develop and demonstrate a coupled array of plasmonic–dielectric nanoantennas offering an ultrahigh density of electromagnetic hot spots (10 cm ) over macroscopic, centimeter scale areas. The hetero-metamaterial is formed by a highly ordered array of vertically standing plasmonic dipolar antennas with a ZnO gap and fabricated using a scalable electrodeposition technique. It supports a complex modal structure, including guided, surface and gap modes, which offers rich opportunities, frequently beyond the local effective medium theory, with optical properties that can be easily controlled and defined at the fabrication stage. This metamaterial platform can be used in a wide variety of applications, including hot-electron generation, nanoscale light sources, sensors, as well as nonlinear and memristive devices. 11 −2
Citation
Córdova‐Castro, R. M., Krasavin, A. V., Nasir, M. E., Wang, P., Bouillard, J. S. G., McPolin, C. P. T., & Zayats, A. V. (in press). Mode Engineering in Large Arrays of Coupled Plasmonic–Dielectric Nanoantennas. Advanced Optical Materials, Article 2001467. https://doi.org/10.1002/adom.202001467
Journal Article Type | Article |
---|---|
Acceptance Date | Feb 22, 2021 |
Online Publication Date | Mar 19, 2021 |
Deposit Date | Mar 30, 2021 |
Publicly Available Date | Mar 30, 2021 |
Journal | Advanced Optical Materials |
Print ISSN | 2195-1071 |
Electronic ISSN | 2195-1071 |
Publisher | Wiley |
Peer Reviewed | Peer Reviewed |
Article Number | 2001467 |
DOI | https://doi.org/10.1002/adom.202001467 |
Keywords | Electromagnetic hot spots; Field enhancement; Self‐assembled nanoantennas |
Public URL | https://hull-repository.worktribe.com/output/3743721 |
Files
Published article
(1.7 Mb)
PDF
Copyright Statement
© 2021 The Authors. Advanced Optical Materials published by Wiley‐VCH GmbH. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
You might also like
Plasmons Enhancing Sub-Bandgap Photoconductivity in TiO<inf>2</inf> Nanoparticles Film
(2024)
Journal Article
Impact of Surface Ligand on the Biocompatibility of InP/ZnS Quantum Dots with Platelets
(2023)
Journal Article
Long-Range and High-Efficiency Plasmon-Assisted Förster Resonance Energy Transfer
(2023)
Journal Article
Magnetic Mode Coupling in Hyperbolic Bowtie Meta-Antennas
(2023)
Journal Article
Organic copolymer lasing from single defect microcavity fabricated using laser patterning
(2023)
Journal Article
Downloadable Citations
About Repository@Hull
Administrator e-mail: repository@hull.ac.uk
This application uses the following open-source libraries:
SheetJS Community Edition
Apache License Version 2.0 (http://www.apache.org/licenses/)
PDF.js
Apache License Version 2.0 (http://www.apache.org/licenses/)
Font Awesome
SIL OFL 1.1 (http://scripts.sil.org/OFL)
MIT License (http://opensource.org/licenses/mit-license.html)
CC BY 3.0 ( http://creativecommons.org/licenses/by/3.0/)
Powered by Worktribe © 2024
Advanced Search