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Metal-Enhanced Near-Infrared Fluorescence by Micropatterned Gold Nanocages.

Authors :
Camposeo A
Persano L
Manco R
Wang Y
Del Carro P
Zhang C
Li ZY
Pisignano D
Xia Y
Source :
ACS nano [ACS Nano] 2015 Oct 27; Vol. 9 (10), pp. 10047-54. Date of Electronic Publication: 2015 Sep 23.
Publication Year :
2015

Abstract

In metal-enhanced fluorescence (MEF), the localized surface plasmon resonances of metallic nanostructures amplify the absorption of excitation light and assist in radiating the consequent fluorescence of nearby molecules to the far-field. This effect is at the base of various technologies that have strong impact on fields such as optics, medical diagnostics, and biotechnology. Among possible emission bands, those in the near-infrared (NIR) are particularly intriguing and widely used in proteomics and genomics due to its noninvasive character for biomolecules, living cells, and tissues, which greatly motivates the development of effective and, eventually, multifunctional NIR-MEF platforms. Here, we demonstrate NIR-MEF substrates based on Au nanocages micropatterned with a tight spatial control. The dependence of the fluorescence enhancement on the distance between the nanocage and the radiating dipoles is investigated experimentally and modeled by taking into account the local electric field enhancement and the modified radiation and absorption rates of the emitting molecules. At a distance around 80 nm, a maximum enhancement up to 2-7 times with respect to the emission from pristine dyes (in the region 660-740 nm) is estimated for films and electrospun nanofibers. Due to their chemical stability, finely tunable plasmon resonances, and large light absorption cross sections, Au nanocages are ideal NIR-MEF agents. When these properties are integrated with the hollow interior and controllable surface porosity, it is feasible to develop a nanoscale system for targeted drug delivery with the diagnostic information encoded in the fluorophore.

Details

Language :
English
ISSN :
1936-086X
Volume :
9
Issue :
10
Database :
MEDLINE
Journal :
ACS nano
Publication Type :
Academic Journal
Accession number :
26397166
Full Text :
https://doi.org/10.1021/acsnano.5b03624