Author:
Ragheb Iman,Braïk Macilia,Lau-Truong Stéphanie,Belkhir Abderrahmane,Rumyantseva Anna,Kostcheev Sergei,Adam Pierre-Michel,Chevillot-Biraud Alexandre,Lévi Georges,Aubard Jean,Boubekeur-Lecaque Leïla,Félidj Nordin
Abstract
Long-range interaction in regular metallic nanostructure arrays can provide the possibility to manipulate their optical properties, governed by the excitation of localized surface plasmon (LSP) resonances. When assembling the nanoparticles in an array, interactions between nanoparticles can result in a strong electromagnetic coupling for specific grating constants. Such a grating effect leads to narrow LSP peaks due to the emergence of new radiative orders in the plane of the substrate, and thus, an important improvement of the intensity of the local electric field. In this work, we report on the optical study of LSP modes supported by square arrays of gold nanodiscs deposited on an indium tin oxyde (ITO) coated glass substrate, and its impact on the surface enhanced Raman scattering (SERS) of a molecular adsorbate, the mercapto benzoic acid (4-MBA). We estimated the Raman gain of these molecules, by varying the grating constant and the refractive index of the surrounding medium of the superstrate, from an asymmetric medium (air) to a symmetric one (oil). We show that the Raman gain can be improved with one order of magnitude in a symmetric medium compared to SERS experiments in air, by considering the appropriate grating constant. Our experimental results are supported by FDTD calculations, and confirm the importance of the grating effect in the design of SERS substrates.
Subject
General Materials Science,General Chemical Engineering
Reference45 articles.
1. Nanoplasmonics with Surface Plasmons;Krenn,2007
2. Plasmonics: Fundamentals and Applications;Maier,2007
3. Multipolar surface plasmon peaks on gold nanotriangles;Félidj;J. Chem. Phys.,2008
4. The optimal aspect ratio of gold nanorods for plasmonic bio-sensing;Becker;Plasmonics,2010
5. Electromagnetic fields around silver nanoparticles and dimers;Hao;J. Chem. Phys.,2004
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