Affiliation:
1. Division of Microbial Disease, UCL Eastman Dental Institute, University College London, 256 Gray’s Inn Road,
London WC1X 8LD, United Kingdom
Abstract
Abstract:
Surface-enhanced Raman Scattering (SERS) is a sensing method based on inelastic
scattering of a laser beam by a reporter molecule absorbed on a plasmonic substrate. The incident
laser beam induces a localized-surface plasmon resonance in the substrate, which generates an
oscillating electromagnetic field on the substrate dielectric surface. Under the influence of this
field, the reporter molecule absorbed on the plasmonic substrate starts to vibrate, causing inelastic
scattering of the laser beam. The laser-induced electromagnetic field is also the main contributor
to the enhancement observed in the intensity of the scattered light. Plasmonic substrates are
nanostructured surfaces often made of noble metals. The surface enhancement of a plasmonic
substrate is determined primarily by factors related to the substrate’s nano-architecture and its
composition. SERS-based labeling has emerged as a reliable and sophisticated anti-counterfeiting
technology with potential applications in a wide range of industries. This technology is based on
detecting the SERS signals produced by SERS tags using Raman spectroscopy. SERS tags are
generally made of a plasmonic substrate, a Raman reporter, and a protective coating shell. They
can be engineered using a wide variety of materials and methods. Several SERS-based anticounterfeiting
labels have been developed in the past two decades. Some of these labels have
been successfully combined with identification systems based on artificial intelligence. The purpose
of this review is to shed light on the SERS technology and the progress that has been
achieved in the SERS-based tracking systems.
Publisher
Bentham Science Publishers Ltd.
Subject
Pharmaceutical Science,Biomedical Engineering,Medicine (miscellaneous),Bioengineering,Biotechnology
Cited by
5 articles.
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