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Graphene field-effect transistor sensor for detection of urea in water: Experimental study and DFT analysis

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dc.title Graphene field-effect transistor sensor for detection of urea in water: Experimental study and DFT analysis en
dc.contributor.author Špaček, Ondřej
dc.contributor.author Supalová, Linda
dc.contributor.author Mach, Jindřich
dc.contributor.author Nezval, David
dc.contributor.author Šikola, Tomáš
dc.contributor.author Bartošík, Miroslav
dc.relation.ispartof Applied Surface Science Advances
dc.identifier.issn 2666-5239 Scopus Sources, Sherpa/RoMEO, JCR
dc.date.issued 2026
utb.relation.volume 33
dc.type article
dc.language.iso en
dc.publisher Elsevier B.V.
dc.identifier.doi 10.1016/j.apsadv.2026.100978
dc.relation.uri https://www.sciencedirect.com/science/article/pii/S2666523926000498
dc.relation.uri https://www.sciencedirect.com/science/article/pii/S2666523926000498/pdfft?md5=0cf339e73191f7187680db4529e87a39&pid=1-s2.0-S2666523926000498-main.pdf
dc.subject DFT en
dc.subject graphene en
dc.subject water en
dc.subject urea en
dc.subject sensor en
dc.subject FET en
dc.subject charge transfer en
dc.description.abstract Urea sensors are used in medicine for disease monitoring, the automotive industry for emission control, agriculture and food safety for fertilizer and residue analysis, environmental monitoring for water pollution detection, and in industrial processes for production control. This article presents a pioneering experimental study of non-selective urea detection in aqueous solution using graphene doping in a field-effect transistor (FET) configuration. It is demonstrated that water itself p-dopes graphene, while the addition of urea weakens this effect (resulting in reduced p-doping). The response is explained by original density functional theory (DFT) calculations considering the common influence of water and urea. Analyses of charge redistributions and band structures indicate the formation of non-doping urea–water complexes responsible for the observed results. Moreover, the calculations provide deeper insight into the complex urea–water–graphene interactions, which may be utilized in other applications. en
utb.faculty Faculty of Technology
dc.identifier.uri http://hdl.handle.net/10563/1012844
utb.identifier.scopus 2-s2.0-105034338964
utb.source j-scopus
dc.date.accessioned 2026-07-24T14:23:16Z
dc.date.available 2026-07-24T14:23:16Z
dc.description.sponsorship We acknowledge the support by the Grant Agency of the Czech Republic (grant No. 25-16894S ), OP JAK (project No CZ.02.01.01/00/22_008/0004594 TERAFIT), and CzechNanoLab Research Infrastructure supported by MEYS CR ( LM2023051 ).
dc.description.sponsorship Grant Agency of the Czech Republic [25-16894S]; OP JAK [CZ.02.01.01/00/22_008/0004594 TERAFIT]; CzechNanoLab Research Infrastructure by MEYS CR [LM2023051]
dc.rights Attribution-NonCommercial-NoDerivatives 4.0 International
dc.rights.uri http://creativecommons.org/licenses/by-nc-nd/4.0/
dc.rights.access openAccess
utb.ou Department of Physics and Materials Engineering
utb.contributor.internalauthor Bartošík, Miroslav
utb.fulltext.sponsorship We acknowledge the support by the Grant Agency of the Czech Republic (grant No. 25-16894S), OP JAK (project No CZ.02.01.01/00/22_008/0004594 TERAFIT), and CzechNanoLab Research Infrastructure supported by MEYS CR (LM2023051).
utb.fulltext.projects 25-16894S
utb.fulltext.projects CZ.02.01.01/00/22_008/0004594 TERAFIT
utb.fulltext.projects LM2023051
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