Cargando…

An Investigation on the Use of Au@SiO(2)@Au Nanomatryoshkas as Gap-Enhanced Raman Tags

Gap-enhanced Raman tags are a new type of optical probe that have wide applications in sensing and detection. A gap-enhanced Raman tag is prepared by embedding Raman molecules inside a gap between two plasmonic metals such as an Au core and Au shell. Even though placing Raman molecules beneath an Au...

Descripción completa

Detalles Bibliográficos
Autores principales: Eldridge, Brinton King, Gomrok, Saghar, Barr, James W., Chaffin, Elise Anne, Fielding, Lauren, Sachs, Christian, Stickels, Katie, Williams, Paiton, Wang, Yongmei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10650036/
https://www.ncbi.nlm.nih.gov/pubmed/37947737
http://dx.doi.org/10.3390/nano13212893
_version_ 1785135687272497152
author Eldridge, Brinton King
Gomrok, Saghar
Barr, James W.
Chaffin, Elise Anne
Fielding, Lauren
Sachs, Christian
Stickels, Katie
Williams, Paiton
Wang, Yongmei
author_facet Eldridge, Brinton King
Gomrok, Saghar
Barr, James W.
Chaffin, Elise Anne
Fielding, Lauren
Sachs, Christian
Stickels, Katie
Williams, Paiton
Wang, Yongmei
author_sort Eldridge, Brinton King
collection PubMed
description Gap-enhanced Raman tags are a new type of optical probe that have wide applications in sensing and detection. A gap-enhanced Raman tag is prepared by embedding Raman molecules inside a gap between two plasmonic metals such as an Au core and Au shell. Even though placing Raman molecules beneath an Au shell seems counter-intuitive, it has been shown that such systems produce a stronger surface-enhanced Raman scattering response due to the strong electric field inside the gap. While the theoretical support of the stronger electric field inside the gap was provided in the literature, a comprehensive understanding of how the electric field inside the gap compares with that of the outer surface of the particle was not readily available. We investigated Au@SiO [Formula: see text] @Au nanoparticles with diameters ranging from 35 nm to 70 nm with varying shell (2.5–10 nm) and gap (2.5–15 nm) thicknesses and obtained both far-field and near-field spectra. The extinction spectra from these particles always have two peaks. The low-energy peak redshifts with the decreasing shell thickness. However, when the gap thickness decreases, the low-energy peaks first blueshift and then redshift, producing a C-shape in the peak position. For every system we investigated, the near-field enhancement spectra were stronger inside the gap than on the outer surface of the nanoparticle. We find that a thin shell combined with a thin gap will produce the greatest near-field enhancement inside the gap. Our work fills the knowledge gap between the exciting potential applications of gap-enhanced Raman tags and the fundamental knowledge of enhancement provided by the gap.
format Online
Article
Text
id pubmed-10650036
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-106500362023-11-01 An Investigation on the Use of Au@SiO(2)@Au Nanomatryoshkas as Gap-Enhanced Raman Tags Eldridge, Brinton King Gomrok, Saghar Barr, James W. Chaffin, Elise Anne Fielding, Lauren Sachs, Christian Stickels, Katie Williams, Paiton Wang, Yongmei Nanomaterials (Basel) Article Gap-enhanced Raman tags are a new type of optical probe that have wide applications in sensing and detection. A gap-enhanced Raman tag is prepared by embedding Raman molecules inside a gap between two plasmonic metals such as an Au core and Au shell. Even though placing Raman molecules beneath an Au shell seems counter-intuitive, it has been shown that such systems produce a stronger surface-enhanced Raman scattering response due to the strong electric field inside the gap. While the theoretical support of the stronger electric field inside the gap was provided in the literature, a comprehensive understanding of how the electric field inside the gap compares with that of the outer surface of the particle was not readily available. We investigated Au@SiO [Formula: see text] @Au nanoparticles with diameters ranging from 35 nm to 70 nm with varying shell (2.5–10 nm) and gap (2.5–15 nm) thicknesses and obtained both far-field and near-field spectra. The extinction spectra from these particles always have two peaks. The low-energy peak redshifts with the decreasing shell thickness. However, when the gap thickness decreases, the low-energy peaks first blueshift and then redshift, producing a C-shape in the peak position. For every system we investigated, the near-field enhancement spectra were stronger inside the gap than on the outer surface of the nanoparticle. We find that a thin shell combined with a thin gap will produce the greatest near-field enhancement inside the gap. Our work fills the knowledge gap between the exciting potential applications of gap-enhanced Raman tags and the fundamental knowledge of enhancement provided by the gap. MDPI 2023-11-01 /pmc/articles/PMC10650036/ /pubmed/37947737 http://dx.doi.org/10.3390/nano13212893 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Eldridge, Brinton King
Gomrok, Saghar
Barr, James W.
Chaffin, Elise Anne
Fielding, Lauren
Sachs, Christian
Stickels, Katie
Williams, Paiton
Wang, Yongmei
An Investigation on the Use of Au@SiO(2)@Au Nanomatryoshkas as Gap-Enhanced Raman Tags
title An Investigation on the Use of Au@SiO(2)@Au Nanomatryoshkas as Gap-Enhanced Raman Tags
title_full An Investigation on the Use of Au@SiO(2)@Au Nanomatryoshkas as Gap-Enhanced Raman Tags
title_fullStr An Investigation on the Use of Au@SiO(2)@Au Nanomatryoshkas as Gap-Enhanced Raman Tags
title_full_unstemmed An Investigation on the Use of Au@SiO(2)@Au Nanomatryoshkas as Gap-Enhanced Raman Tags
title_short An Investigation on the Use of Au@SiO(2)@Au Nanomatryoshkas as Gap-Enhanced Raman Tags
title_sort investigation on the use of au@sio(2)@au nanomatryoshkas as gap-enhanced raman tags
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10650036/
https://www.ncbi.nlm.nih.gov/pubmed/37947737
http://dx.doi.org/10.3390/nano13212893
work_keys_str_mv AT eldridgebrintonking aninvestigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT gomroksaghar aninvestigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT barrjamesw aninvestigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT chaffineliseanne aninvestigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT fieldinglauren aninvestigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT sachschristian aninvestigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT stickelskatie aninvestigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT williamspaiton aninvestigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT wangyongmei aninvestigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT eldridgebrintonking investigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT gomroksaghar investigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT barrjamesw investigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT chaffineliseanne investigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT fieldinglauren investigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT sachschristian investigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT stickelskatie investigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT williamspaiton investigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags
AT wangyongmei investigationontheuseofausio2aunanomatryoshkasasgapenhancedramantags