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AuthorBibikova, Olgadc.contributor.author
AuthorHaas, Juliandc.contributor.author
AuthorPopov, Alexeydc.contributor.author
AuthorRyabchikov, Yurydc.contributor.author
AuthorKinnunen, Mattidc.contributor.author
AuthorKabashin, Andreidc.contributor.author
AuthorMeglinski, Igordc.contributor.author
AuthorMizaikoff, Borisdc.contributor.author
AuthorLopez-Lorente, Angela I.dc.contributor.author
Date of accession2019-03-27T11:19:23Zdc.date.accessioned
Available in OPARU since2019-03-27T11:19:23Zdc.date.available
Date of first publication2017-10-16dc.date.issued
AbstractPlasmonic anisotropic nanoparticles possess a number of hot spots on their surface due to the presence of sharp edges, tips or vertices, leading to a high electric field strength surrounding the nanostructures. In this paper, we explore different plasmonic nanostructures, including anisotropic gold nanostars (AuNSts) and spherical gold nanoparticles, in surface-enhanced infrared absorption spectroscopy (SEIRAS) in an attenuated total reflection (ATR) configuration. In our experiments, we 22 23 24 25 26 27 observed up to 10-times enhancement of the infrared (IR) absorption of thioglycolic acid (TGA) and up 28 to 2-times enhancement of signals for bovine serum albumin (BSA) protein on plasmonic nanostructure- based films deposited on a silicon (Si) internal reflection element (IRE) compared to bare Si IRE. The dependence of the observed enhancement on the amount of AuNSts present at the surface of the IRE has been demonstrated. Quantitative studies with both, TGA and BSA were performed, observing that the 29 30 31 32 33 SEIRA signal can be correlated to the concentration of analyte molecules present within the evanescent 34 field. The calibration curves in the presence of the AuNSts showed enhanced sensitivity as compared with the bare Si IRE. We finally compare efficiencies of anisotropic AuNSts and spherical citrate- capped and “bare” laser-synthesized gold nanoparticles as SEIRAS substrates for the detection of TGA 35 36 37 38 and BSA. The signal obtained from AuNSts was at least 2 times higher for TGA molecules in 39 comparison with spherical gold nanoparticles, which was explained by a more efficient generation of hot spots on anisotropic surface due to the presence of sharp edges, tips or vertices, leading to a high electric field strength surrounding the AuNSts.dc.description.abstract
Languageen_USdc.language.iso
PublisherUniversität Ulmdc.publisher
LicenseCC BY-NC-ND 4.0 Internationaldc.rights
Link to license texthttps://creativecommons.org/licenses/by-nc-nd/4.0/dc.rights.uri
KeywordSEIRASdc.subject
KeywordPlasmonicdc.subject
KeywordGold nanostarsdc.subject
KeywordGold nanosperesdc.subject
Dewey Decimal GroupDDC 540 / Chemistry & allied sciencesdc.subject.ddc
LCSHFourier transform infrared spectroscopydc.subject.lcsh
LCSHAbsorption spectroscopydc.subject.lcsh
LCSHPlasmonicsdc.subject.lcsh
LCSHGolddc.subject.lcsh
LCSHNanoparticlesdc.subject.lcsh
TitleSurface enhanced infrared absorption spectroscopy based on gold nanostars and spherical nanoparticlesdc.title
Resource typeWissenschaftlicher Artikeldc.type
VersionacceptedVersiondc.description.version
DOIhttp://dx.doi.org/10.18725/OPARU-12491dc.identifier.doi
URNhttp://nbn-resolving.de/urn:nbn:de:bsz:289-oparu-12548-2dc.identifier.urn
GNDFT-IR-Spektroskopiedc.subject.gnd
GNDGolddc.subject.gnd
GNDNanopartikeldc.subject.gnd
GNDNanosphäredc.subject.gnd
FacultyFakultät für Naturwissenschaftenuulm.affiliationGeneral
InstitutionInstitut für Analytische und Bioanalytische Chemieuulm.affiliationSpecific
Peer reviewjauulm.peerReview
DCMI TypeTextuulm.typeDCMI
CategoryPublikationenuulm.category
Issueuulm.issue
DOI of original publication10.1016/j.aca.2017.07.045dc.relation1.doi
Source - Title of sourceAnalytica chimica actasource.title
Source - Place of publicationElseviersource.publisher
Source - Volume990source.volume
Source - Year2017source.year
Source - From page141source.fromPage
Source - To page149source.toPage
Source - Article numberACA-17-689R1source.articleNumber
Source - ISSN0003-2670source.identifier.issn
Source - eISSN1873-4324source.identifier.eissn
EU project uulmTROPSENSE / Development of a non-invassive breath test for early diagnosis of tropical diseases / EC / H2020 / 645758uulm.projectEU
Bibliographyuulmuulm.bibliographie


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