Quantitatively linking morphology and optical response of individual silver nanohedra.
Journal
Nanoscale
ISSN: 2040-3372
Titre abrégé: Nanoscale
Pays: England
ID NLM: 101525249
Informations de publication
Date de publication:
04 Aug 2022
04 Aug 2022
Historique:
pubmed:
23
7
2022
medline:
23
7
2022
entrez:
22
7
2022
Statut:
epublish
Résumé
The optical response of metal nanoparticles is governed by plasmonic resonances, which are dictated by the particle morphology. A thorough understanding of the link between morphology and optical response requires quantitatively measuring optical and structural properties of the same particle. Here we present such a study, correlating electron tomography and optical micro-spectroscopy. The optical measurements determine the scattering and absorption cross-section spectra in absolute units, and electron tomography determines the 3D morphology. Numerical simulations of the spectra for the individual particle geometry, and the specific optical set-up used, allow for a quantitative comparison including the cross-section magnitude. Silver nanoparticles produced by photochemically driven colloidal synthesis, including decahedra, tetrahedra and bi-tetrahedra are investigated. A mismatch of measured and simulated spectra is found in some cases when assuming pure silver particles, which is explained by the presence of a few atomic layers of tarnish on the surface, not evident in electron tomography. The presented method tightens the link between particle morphology and optical response, supporting the predictive design of plasmonic nanomaterials.
Identifiants
pubmed: 35866565
doi: 10.1039/d2nr02131e
pmc: PMC9351607
doi:
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
11028-11037Références
Nano Lett. 2010 Jun 9;10(6):2097-104
pubmed: 20438116
Nano Lett. 2012 Jan 11;12(1):145-50
pubmed: 22168793
Chem Rev. 2019 Jan 9;119(1):664-699
pubmed: 30346757
Chem Soc Rev. 2014 Jun 7;43(11):3921-56
pubmed: 24724158
Angew Chem Int Ed Engl. 2009;48(42):7787-91
pubmed: 19760687
Nanoscale. 2015 Aug 7;7(29):12706-12
pubmed: 26153799
Nano Lett. 2005 Mar;5(3):515-8
pubmed: 15755105
Nanoscale. 2020 Jan 7;12(1):58-66
pubmed: 31815994
Ultramicroscopy. 2015 Oct;157:35-47
pubmed: 26057688
ACS Nano. 2014 May 27;8(5):4395-402
pubmed: 24787120
Nano Lett. 2012 Aug 8;12(8):4172-80
pubmed: 22746278
ACS Photonics. 2019 Aug 21;6(8):2149-2160
pubmed: 32064304
Langmuir. 2009 Apr 9;25(6):3802-7
pubmed: 19708255
Plasmonics. 2014;9:607-614
pubmed: 24834020
Phys Rev Lett. 2012 Dec 7;109(23):233902
pubmed: 23368203
Chem Soc Rev. 2008 Sep;37(9):1792-805
pubmed: 18762829
Nanoscale. 2019 Apr 11;11(15):7062-7096
pubmed: 30931457
Opt Express. 2013 Sep 9;21(18):21500-7
pubmed: 24104025
Chem Soc Rev. 2015 Jan 7;44(1):40-57
pubmed: 24979351
Nanoscale. 2014 Nov 7;6(21):12696-702
pubmed: 25215960
J Phys Condens Matter. 2016 Feb 10;28(5):053001
pubmed: 26792459