Cargando…

Sandwiching analytes with structurally diverse plasmonic nanoparticles on paper substrates for surface enhanced Raman spectroscopy

This report describes the systematic combination of structurally diverse plasmonic metal nanoparticles (AgNPs, AuNPs, Ag core–Au shell NPs, and anisotropic AuNPs) on flexible paper-based materials to induce signal-enhancing environments for surface enhanced Raman spectroscopy (SERS) applications. Th...

Descripción completa

Detalles Bibliográficos
Autores principales: Lartey, Jemima A., Harms, John P., Frimpong, Richard, Mulligan, Christopher C., Driskell, Jeremy D., Kim, Jun-Hyun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9073094/
https://www.ncbi.nlm.nih.gov/pubmed/35529713
http://dx.doi.org/10.1039/c9ra05399a
_version_ 1784701209899171840
author Lartey, Jemima A.
Harms, John P.
Frimpong, Richard
Mulligan, Christopher C.
Driskell, Jeremy D.
Kim, Jun-Hyun
author_facet Lartey, Jemima A.
Harms, John P.
Frimpong, Richard
Mulligan, Christopher C.
Driskell, Jeremy D.
Kim, Jun-Hyun
author_sort Lartey, Jemima A.
collection PubMed
description This report describes the systematic combination of structurally diverse plasmonic metal nanoparticles (AgNPs, AuNPs, Ag core–Au shell NPs, and anisotropic AuNPs) on flexible paper-based materials to induce signal-enhancing environments for surface enhanced Raman spectroscopy (SERS) applications. The anisotropic AuNP-modified paper exhibits the highest SERS response due to the surface area and the nature of the broad surface plasmon resonance (SPR) neighboring the Raman excitation wavelength. The subsequent addition of a second layer with these four NPs (e.g., sandwich arrangement) leads to the notable increase of the SERS signals by inducing a high probability of electromagnetic field environments associated with the interparticle SPR coupling and hot spots. After examining sixteen total combinations, the highest SERS response is obtained from the second layer with AgNPs on the anisotropic AuNP paper substrate, which allows for a higher calibration sensitivity and wider dynamic range than those of typical AuNP–AuNP arrangement. The variation of the SERS signals is also found to be below 20% based on multiple measurements (both intra-sample and inter-sample). Furthermore, the degree of SERS signal reductions for the sandwiched analytes is notably slow, indicating their increased long-term stability. The optimized combination is then employed in the detection of let-7f microRNA to demonstrate their practicability as SERS substrates. Precisely introducing interparticle coupling and hot spots with readily available plasmonic NPs still allows for the design of inexpensive and practical signal enhancing substrates that are capable of increasing the calibration sensitivity, extending the dynamic range, and lowering the detection limit of various organic and biological molecules.
format Online
Article
Text
id pubmed-9073094
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90730942022-05-06 Sandwiching analytes with structurally diverse plasmonic nanoparticles on paper substrates for surface enhanced Raman spectroscopy Lartey, Jemima A. Harms, John P. Frimpong, Richard Mulligan, Christopher C. Driskell, Jeremy D. Kim, Jun-Hyun RSC Adv Chemistry This report describes the systematic combination of structurally diverse plasmonic metal nanoparticles (AgNPs, AuNPs, Ag core–Au shell NPs, and anisotropic AuNPs) on flexible paper-based materials to induce signal-enhancing environments for surface enhanced Raman spectroscopy (SERS) applications. The anisotropic AuNP-modified paper exhibits the highest SERS response due to the surface area and the nature of the broad surface plasmon resonance (SPR) neighboring the Raman excitation wavelength. The subsequent addition of a second layer with these four NPs (e.g., sandwich arrangement) leads to the notable increase of the SERS signals by inducing a high probability of electromagnetic field environments associated with the interparticle SPR coupling and hot spots. After examining sixteen total combinations, the highest SERS response is obtained from the second layer with AgNPs on the anisotropic AuNP paper substrate, which allows for a higher calibration sensitivity and wider dynamic range than those of typical AuNP–AuNP arrangement. The variation of the SERS signals is also found to be below 20% based on multiple measurements (both intra-sample and inter-sample). Furthermore, the degree of SERS signal reductions for the sandwiched analytes is notably slow, indicating their increased long-term stability. The optimized combination is then employed in the detection of let-7f microRNA to demonstrate their practicability as SERS substrates. Precisely introducing interparticle coupling and hot spots with readily available plasmonic NPs still allows for the design of inexpensive and practical signal enhancing substrates that are capable of increasing the calibration sensitivity, extending the dynamic range, and lowering the detection limit of various organic and biological molecules. The Royal Society of Chemistry 2019-10-11 /pmc/articles/PMC9073094/ /pubmed/35529713 http://dx.doi.org/10.1039/c9ra05399a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Lartey, Jemima A.
Harms, John P.
Frimpong, Richard
Mulligan, Christopher C.
Driskell, Jeremy D.
Kim, Jun-Hyun
Sandwiching analytes with structurally diverse plasmonic nanoparticles on paper substrates for surface enhanced Raman spectroscopy
title Sandwiching analytes with structurally diverse plasmonic nanoparticles on paper substrates for surface enhanced Raman spectroscopy
title_full Sandwiching analytes with structurally diverse plasmonic nanoparticles on paper substrates for surface enhanced Raman spectroscopy
title_fullStr Sandwiching analytes with structurally diverse plasmonic nanoparticles on paper substrates for surface enhanced Raman spectroscopy
title_full_unstemmed Sandwiching analytes with structurally diverse plasmonic nanoparticles on paper substrates for surface enhanced Raman spectroscopy
title_short Sandwiching analytes with structurally diverse plasmonic nanoparticles on paper substrates for surface enhanced Raman spectroscopy
title_sort sandwiching analytes with structurally diverse plasmonic nanoparticles on paper substrates for surface enhanced raman spectroscopy
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9073094/
https://www.ncbi.nlm.nih.gov/pubmed/35529713
http://dx.doi.org/10.1039/c9ra05399a
work_keys_str_mv AT larteyjemimaa sandwichinganalyteswithstructurallydiverseplasmonicnanoparticlesonpapersubstratesforsurfaceenhancedramanspectroscopy
AT harmsjohnp sandwichinganalyteswithstructurallydiverseplasmonicnanoparticlesonpapersubstratesforsurfaceenhancedramanspectroscopy
AT frimpongrichard sandwichinganalyteswithstructurallydiverseplasmonicnanoparticlesonpapersubstratesforsurfaceenhancedramanspectroscopy
AT mulliganchristopherc sandwichinganalyteswithstructurallydiverseplasmonicnanoparticlesonpapersubstratesforsurfaceenhancedramanspectroscopy
AT driskelljeremyd sandwichinganalyteswithstructurallydiverseplasmonicnanoparticlesonpapersubstratesforsurfaceenhancedramanspectroscopy
AT kimjunhyun sandwichinganalyteswithstructurallydiverseplasmonicnanoparticlesonpapersubstratesforsurfaceenhancedramanspectroscopy