Skip Main Navigation Links Jump to Footer
Faraday DiscussionsVolume 132, 2006, Pages 201-213

Electromagnetic modelling of Raman enhancement from nanoscale substrates: A route to estimation of the magnitude of the chemical enhancement mechanism in SERS(Conference Paper)

  • Analytical Science Group, National Physical Laboratory, Queens Road, Teddington, TW11 0LW, United Kingdom

Abstract

Despite widespread use for more than two decades, the SERS phenomenon has defied accurate physical and chemical explanation. The relative contributions from electronic and chemical mechanisms are difficult to quantify and are often not reproduced under nominally similar experimental conditions. This work has used electromagnetic modelling to predict the Raman enhancement expected from three configurations: metal nanoparticles, structured metal surfaces, and sharp metal tips interacting with metal surfaces. In each case, parameters such as artefact size, artefact separation and incident radiation wavelength have been varied and the resulting electromagnetic field modelled. This has yielded an electromagnetic description of these configurations with predictions of the maximum expected Raman enhancement, and hence a prediction of the optimum substrate configuration for the SERS process. When combined with experimental observations of the dependence of Raman enhancement with changing ionic strength, the modelling results have allowed a novel estimate of the size of the chemical enhancement mechanism to be produced. © The Royal Society of Chemistry 2005.

  • ISSN: 13596640
  • Source Type: Journal
  • Original language: English
  • DOI: 10.1039/b506751k
  • Document Type: Conference Paper

  Brown, R.J.C.; Analytical Science Group, National Physical Laboratory, Queens Road, United Kingdom;
© Copyright 2006 Elsevier B.V., All rights reserved.

Cited by 38 documents

Zhang, M. , Meng, J. , Wang, D.
Biomimetic synthesis of hierarchical 3D Ag butterfly wing scale arrays/graphene composites as ultrasensitive SERS substrates for efficient trace chemical detection
(2018) Journal of Materials Chemistry C
Wang, X. , Cheng, X. , Yu, X.
Study on Surface-Enhanced Raman Scattering Substrate Based on Titanium Oxide Nanorods Coated with Gold Nanoparticles
(2018) Journal of Nanotechnology
Ji, W. , Han, X.X. , Zhao, B.
Charge-transfer-induced enhancement of Raman scattering based on semiconductors
(2017) Recent Developments In Plasmon-Supported Raman Spectroscopy: 45 Years of Enhanced Raman Signals
View details of all 38 citations