4.6 Article

Near-field enhancement in oxidized close gap aluminum dimers

Journal

NANOTECHNOLOGY
Volume 32, Issue 2, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1361-6528/abba98

Keywords

aluminum oxide; closely coupled dimers; squeezing plasmonic modes; near-field enhancement; helium ion lithography

Funding

  1. Innonetwork Regional project 'M3O3' CUP [B37H17005320007]
  2. Innonetwork Regional project 'IN-AIR' CUP [B37H17004840007]
  3. U.S. Department of Energy [DE-AC02-05CH11231]
  4. 'Tecnopolo per la medicina di precisione' (TecnoMed Puglia)-Regione Puglia: DGR [2117 del 21/11/2018 CUP: B84I18000540002]
  5. 'Tecnopolo di Nanotecnologia e Fotonica per la medicina di precisione' (TECNOMED)-FISR/MIUR-CNR: delibera CIPE [3449 del 7-08-2017 CUP: B83B17000010001]

Ask authors/readers for more resources

The high refractive index of native aluminum oxide helps to squeeze the plasmonic mode into extremely small volumes in close gap configurations, providing higher electromagnetic near-field confinement and enhancement in bowtie antenna gaps than achieved in pure aluminum.
Aluminum bowtie nanoantennas represent a possibility to confine and enhance electromagnetic (EM) field at optical frequencies in subwavelength regions by using an abundant and inexpensive metal. The native oxidation process of this metal is often viewed as a limitation for its application in plasmonics. Here, we show that in close gap configurations, the high refractive index of the native aluminum oxide helps in squeezing the plasmonic mode in extremely reduced size volumes, providing a higher EM near-field confinement and enhancement in the bowtie antenna gaps than achieved in the pure aluminum counterpart. Hence, the study provides new perspectives in the use of such a plasmonic antenna geometry within this aluminum system, which can be useful for improving plasmonics-enabled effects such as surface-enhanced Raman scattering- and light-matter interaction in strong coupling regime.

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