Single-chirality single-wall carbon nanotubes for electrochemical biosensing

dc.contributor.authorSeo, Ju-Yeon
dc.contributor.authorMostafiz, Bahar
dc.contributor.authorTu, Xiaomin
dc.contributor.authorKhripin, Constantine Y.
dc.contributor.authorZheng, Ming
dc.contributor.authorLi, Han
dc.contributor.authorPeltola, Emilia
dc.contributor.organizationfi=materiaalitekniikka|en=Materials Engineering|
dc.contributor.organization-code1.2.246.10.2458963.20.80931480620
dc.converis.publication-id484859618
dc.converis.urlhttps://research.utu.fi/converis/portal/Publication/484859618
dc.date.accessioned2025-08-27T23:31:11Z
dc.date.available2025-08-27T23:31:11Z
dc.description.abstract<p>Single-wall carbon nanotubes (SWCNTs) exhibit versatile optoelectronic properties closely linked to their structural characteristics, such as chiral angles and diameters. Given this, they are promising materials for biosensors. However, in studies investigating SWCNT-based electrochemical biosensors, raw soot has been mostly used. Soot typically contains a mixture of different chiralities, metallic compounds, and various impurities from the synthesis process. As a result, this mixture significantly limits the reproducibility and precision of SWCNT-based sensors. To ensure consistent sensor performance, we employed an aqueous two-phase extraction (ATPE) technique to purify and sort single-chirality SWCNTs—specifically, semiconducting (6,5) SWCNTs and metallic (6,6) SWCNTs. In addition, we used multiple fabrication methods to ensure that only pure-chirality SWCNTs were deposited onto the electrodes. Our findings emphasise the importance of using surfactant-free systems when investigating the influence of chirality on the electrochemical behaviour of SWCNTs. By using monochiral SWCNTs, we achieved precise control over their concentration and density, allowing us to assess their electrochemical properties accurately. Our results reveal that the adsorption-controlled process of the inner sphere redox probe occurs on (6,5) SWCNTs, while a diffusion-controlled process is observed on (6,6) SWCNTs. These findings provide valuable insights that will enhance the performance of SWCNT-based electrochemical biosensors.</p>
dc.format.pagerange4959
dc.format.pagerange4967
dc.identifier.eissn1463-9084
dc.identifier.jour-issn1463-9076
dc.identifier.olddbid204105
dc.identifier.oldhandle10024/187132
dc.identifier.urihttps://www.utupub.fi/handle/11111/52191
dc.identifier.urlhttps://doi.org/10.1039/d4cp04206a
dc.identifier.urnURN:NBN:fi-fe2025082786314
dc.language.isoen
dc.okm.affiliatedauthorSeo, Ju-Yeon
dc.okm.affiliatedauthorMostafiz, Bahar
dc.okm.affiliatedauthorLi, Han
dc.okm.affiliatedauthorPeltola, Emilia
dc.okm.discipline216 Materials engineeringen_GB
dc.okm.discipline216 Materiaalitekniikkafi_FI
dc.okm.internationalcopublicationinternational co-publication
dc.okm.internationalityInternational publication
dc.okm.typeA1 ScientificArticle
dc.publisherRoyal Society of Chemistry (RSC)
dc.publisher.countryUnited Kingdomen_GB
dc.publisher.countryBritanniafi_FI
dc.publisher.country-codeGB
dc.relation.doi10.1039/D4CP04206A
dc.relation.ispartofjournalPhysical Chemistry Chemical Physics
dc.relation.issue9
dc.relation.volume27
dc.source.identifierhttps://www.utupub.fi/handle/10024/187132
dc.titleSingle-chirality single-wall carbon nanotubes for electrochemical biosensing
dc.year.issued2025

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