Novel gold nanoparticle substrates based on Surface Enhanced Raman Spectroscopy (SERS) and optimization of their enhancement and reproducibility properties

First reported in 1977 SERS has since been widely studied. Crucial for the fabrication of quality SERS substrate with reliably reproducible results is the consistent and homogenous distribution of hot spots which form at the convergence of two nanoparticles. Presence of these hot spots accounts for...

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Váldodahkki: Chan, Yew Tow.
Eará dahkkit: School of Chemical and Biomedical Engineering
Materiálatiipa: Final Year Project (FYP)
Giella:English
Almmustuhtton: 2010
Fáttát:
Liŋkkat:http://hdl.handle.net/10356/40402
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author Chan, Yew Tow.
author2 School of Chemical and Biomedical Engineering
author_facet School of Chemical and Biomedical Engineering
Chan, Yew Tow.
author_sort Chan, Yew Tow.
collection NTU
description First reported in 1977 SERS has since been widely studied. Crucial for the fabrication of quality SERS substrate with reliably reproducible results is the consistent and homogenous distribution of hot spots which form at the convergence of two nanoparticles. Presence of these hot spots accounts for the enhancement of SERS intensity. Pioneered by Michael J. Natan in 1995, SERS substrate fabrication based on self-assembly of metal colloid monolayers has been extensively practiced. Adopting a similar approach, this project introduces an improved design in SERS substrate fabrication by changing the geometrical parameters of gold nanoparticles (small gold nanoparticles on an array of larger particles – substrate LG0) and employing established thiol chemistry as linker molecules between depositions of gold colloids on glass surface. Three different substrates are prepared each with a unique structural conformation: gold monolayer (G0), gold bilayer (G1) and a novel structure where smaller gold nanoparticles are deposited onto a larger gold monolayer (LG0). To test for their characteristic signal enhancement and reproducibility, SERS measurement of adsorbed Raman reporter molecules were recorded for all three substrates follow by comparison of their signal intensities and the calculated error bars. Of the three, substrate LG0 is hypothesized to have superior enhancement and reproducibility properties.
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spelling ntu-10356/404022023-03-03T15:34:01Z Novel gold nanoparticle substrates based on Surface Enhanced Raman Spectroscopy (SERS) and optimization of their enhancement and reproducibility properties Chan, Yew Tow. School of Chemical and Biomedical Engineering A*STAR Singapore Bioimaging Consortium Kim Donghwan DRNTU::Engineering::Chemical technology First reported in 1977 SERS has since been widely studied. Crucial for the fabrication of quality SERS substrate with reliably reproducible results is the consistent and homogenous distribution of hot spots which form at the convergence of two nanoparticles. Presence of these hot spots accounts for the enhancement of SERS intensity. Pioneered by Michael J. Natan in 1995, SERS substrate fabrication based on self-assembly of metal colloid monolayers has been extensively practiced. Adopting a similar approach, this project introduces an improved design in SERS substrate fabrication by changing the geometrical parameters of gold nanoparticles (small gold nanoparticles on an array of larger particles – substrate LG0) and employing established thiol chemistry as linker molecules between depositions of gold colloids on glass surface. Three different substrates are prepared each with a unique structural conformation: gold monolayer (G0), gold bilayer (G1) and a novel structure where smaller gold nanoparticles are deposited onto a larger gold monolayer (LG0). To test for their characteristic signal enhancement and reproducibility, SERS measurement of adsorbed Raman reporter molecules were recorded for all three substrates follow by comparison of their signal intensities and the calculated error bars. Of the three, substrate LG0 is hypothesized to have superior enhancement and reproducibility properties. Bachelor of Engineering (Chemical and Biomolecular Engineering) 2010-06-15T06:22:49Z 2010-06-15T06:22:49Z 2010 2010 Final Year Project (FYP) http://hdl.handle.net/10356/40402 en Nanyang Technological University 61 p. application/pdf
spellingShingle DRNTU::Engineering::Chemical technology
Chan, Yew Tow.
Novel gold nanoparticle substrates based on Surface Enhanced Raman Spectroscopy (SERS) and optimization of their enhancement and reproducibility properties
title Novel gold nanoparticle substrates based on Surface Enhanced Raman Spectroscopy (SERS) and optimization of their enhancement and reproducibility properties
title_full Novel gold nanoparticle substrates based on Surface Enhanced Raman Spectroscopy (SERS) and optimization of their enhancement and reproducibility properties
title_fullStr Novel gold nanoparticle substrates based on Surface Enhanced Raman Spectroscopy (SERS) and optimization of their enhancement and reproducibility properties
title_full_unstemmed Novel gold nanoparticle substrates based on Surface Enhanced Raman Spectroscopy (SERS) and optimization of their enhancement and reproducibility properties
title_short Novel gold nanoparticle substrates based on Surface Enhanced Raman Spectroscopy (SERS) and optimization of their enhancement and reproducibility properties
title_sort novel gold nanoparticle substrates based on surface enhanced raman spectroscopy sers and optimization of their enhancement and reproducibility properties
topic DRNTU::Engineering::Chemical technology
url http://hdl.handle.net/10356/40402
work_keys_str_mv AT chanyewtow novelgoldnanoparticlesubstratesbasedonsurfaceenhancedramanspectroscopysersandoptimizationoftheirenhancementandreproducibilityproperties