Micrometasense: coupling plasmonic metasurfaces with fluorescence for enhanced detection of microplastics in real samples

buir.contributor.authorEce, Emre
buir.contributor.authorAslan, Yusuf
buir.contributor.authorHacıosmanoglu, Nedim
buir.contributor.authorİnci, Fatih
buir.contributor.orcidİnci, Fatih|0000-0002-9918-5038
buir.contributor.orcidEce, Emre|0000-0002-9357-5086
buir.contributor.orcidHacıosmanoglu, Nedim|0000-0002-0696-6880
buir.contributor.orcidAslan, Yusuf|0000-0002-4013-2599
dc.citation.epage740
dc.citation.issueNumber2
dc.citation.spage725
dc.citation.volumeNumber10
dc.contributor.authorEce, Emre
dc.contributor.authorAslan, Yusuf
dc.contributor.authorHacıosmanoglu, Nedim
dc.contributor.authorİnci, Fatih
dc.date.accessioned2025-02-28T08:38:53Z
dc.date.available2025-02-28T08:38:53Z
dc.date.issued2024-12-27
dc.departmentInstitute of Materials Science and Nanotechnology (UNAM)
dc.description
dc.description.abstractDiverse analytical techniques are employed to scrutinize microplastics (MPs)-pervasive at hazardous concentrations across diverse sources ranging from water reservoirs to consumable substances. The limitations inherent in existing methods, such as their diminished detection capacities, render them inadequate for analyzing MPs of diminutive dimensions (microplastics: 1-5 mu m; nanoplastics: < 1 mu m). Consequently, there is an imperative need to devise methodologies that afford improved sensitivity and lower detection limits for analyzing these pollutants. In this study, we introduce a holistic strategy, i.e., MicroMetaSense, reliant on a metal-enhanced fluorescence (MEF) phenomenon in detecting a myriad size and types of MPs (i.e., poly(methyl methacrylate) (PMMA) and poly(ethylene terephthalate) (PET)) down to 183-205 fg, as well as validated the system with real samples (tap and lake) and artificial ocean samples as a real-world scenario. To obtain precise size distribution in nanometer scale, MPs are initially processed with an ultrafiltration on-a-chip method, and subsequently, the MPs stained with Nile Red dye are subjected to meticulous analysis under a fluorescence microscope, utilizing both a conventional method (glass substrate) and the MicroMetaSense platform. Our approach employs a metasurface to augment fluorescence signals, leveraging the MEF phenomenon, and it demonstrates an enhancement rate of 36.56-fold in detecting MPs compared to the standardized protocols. This low-cost ($2), time-saving (under 30 min), and highly sensitive (183-205 femtogram) strategy presents a promising method for precise size distribution and notable improvements in detection efficacy not only for laboratory samples but also in real environmental samples; hence, signifying a pivotal advancement in conventional methodologies in MP detection.
dc.embargo.release2025-12-27
dc.identifier.doi10.1021/acssensors.4c02070
dc.identifier.issn2379-3694
dc.identifier.urihttps://hdl.handle.net/11693/116979
dc.language.isoEnglish
dc.publisherAmerican Chemical Society
dc.relation.isversionofhttps://dx.doi.org//acssensors.4c02070
dc.rightsCC BY 4.0 (Attribution 4.0 International Deed)
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.source.titleACS Sensors
dc.subjectMicroplastics
dc.subjectNanoplastics
dc.subjectFluorescence microscopy
dc.subjectMetal-enhanced fluorescence
dc.subjectPlasmonic metasurfaces
dc.titleMicrometasense: coupling plasmonic metasurfaces with fluorescence for enhanced detection of microplastics in real samples
dc.typeArticle

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