DocumentCode
1425069
Title
SERS and Density Functional Theory Study of o -Dinitrobenzene on Cu Nanoparticles
Author
Rivera-Betancourt, Omar E. ; Primera-Pedrozo, Oliva M. ; Pacheco-Londoño, Leonardo C. ; Hernandez-Rivera, S.P.
Author_Institution
Dept. of Chem., Univ. of Puerto RicoMayaguez, Mayaguez, PR, USA
Volume
10
Issue
3
fYear
2010
fDate
3/1/2010 12:00:00 AM
Firstpage
699
Lastpage
706
Abstract
Cu colloidal suspensions were prepared by wet chemistry methods: chemical reduction using trisodium citrate. Steadiness varied under conditions such as stirring rate, rate of addition of reducing agent, and temperature control. Sizes of nanoparticles prepared ranged from 2 to 20 nm. Morphology and sizes were characterized using high-resolution transmission electron microscopy. Enhanced Raman spectra of o -dinitrobenzene on prepared nanoparticles suspensions of Cu colloids were obtained with visible excitation at 488 and 514.5 nm. It was found that enhanced Raman signal intensities resulted from the interaction of the analytes with the metallic surface resonance plasmon of Cu nanoparticles excited at the laser frequency. The adsorption behavior of the analytes on the Cu nanoparticles was modeled with Gaussian 03 density functional theory software package. The simplified models used work reasonably well in describing some enhancement results for the Raman experiments on the noble metal colloidal suspensions.
Keywords
adsorption; colloids; density functional theory; materials preparation; nanoparticles; organic compounds; reduction (chemical); software packages; surface enhanced Raman scattering; surface morphology; surface plasmon resonance; suspensions; transmission electron microscopy; Cu; SERS; adsorption properties; chemical reduction; density functional theory software package; enhanced Raman spectra; high-resolution transmission electron microscopy; metallic surface resonance plasmon; nanoparticles suspensions; noble metal colloidal suspensions; o-dinitrobenzene; temperature control; trisodium citrate; wet chemistry methods; Chemicals; Chemistry; Density functional theory; Laser excitation; Morphology; Nanoparticles; Signal analysis; Suspensions; Temperature control; Transmission electron microscopy; Cu nanoparticles; density functional theory (DFT); dinitrobenzenes (DNB); metallic colloidal suspensions; surface-enhanced Raman scattering (SERS);
fLanguage
English
Journal_Title
Sensors Journal, IEEE
Publisher
ieee
ISSN
1530-437X
Type
jour
DOI
10.1109/JSEN.2009.2038626
Filename
5419257
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