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dc.contributor.authorOrlandi, G.en
dc.contributor.authorKuzhir, P.en
dc.contributor.authorIzmaylov, Y.en
dc.contributor.authorAlves, Marins, J.en
dc.contributor.authorEzzaier, H.en
dc.contributor.authorRobert, L.en
dc.contributor.authorDoutre, F.en
dc.contributor.authorNoblin, X.en
dc.contributor.authorLomenech, C.en
dc.contributor.authorBossis, G.en
dc.contributor.authorMeunier, A.en
dc.contributor.authorSandoz, G.en
dc.contributor.authorZubarev, A.en
dc.date.accessioned2021-08-31T15:02:43Z-
dc.date.available2021-08-31T15:02:43Z-
dc.date.issued2016-
dc.identifier.citationMicrofluidic separation of magnetic nanoparticles on an ordered array of magnetized micropillars / G. Orlandi, P. Kuzhir, Y. Izmaylov, et al. — DOI 10.1103/PhysRevE.93.062604 // Physical Review E. — 2016. — Vol. 93. — Iss. 6. — 062501.en
dc.identifier.issn24700045-
dc.identifier.otherFinal2
dc.identifier.otherAll Open Access, Green3
dc.identifier.otherhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-84975263082&doi=10.1103%2fPhysRevE.93.062604&partnerID=40&md5=81d24c154c928559a5f9d56cd5064eaf
dc.identifier.otherhttps://hal.archives-ouvertes.fr/hal-01356263/file/PRE-93-062604.pdfm
dc.identifier.urihttp://elar.urfu.ru/handle/10995/102244-
dc.description.abstractMicrofluidic separation of magnetic particles is based on their capture by magnetized microcollectors while the suspending fluid flows past the microcollectors inside a microchannel. Separation of nanoparticles is often challenging because of strong Brownian motion. Low capture efficiency of nanoparticles limits their applications in bioanalysis. However, at some conditions, magnetic nanoparticles may undergo field-induced aggregation that amplifies the magnetic attractive force proportionally to the aggregate volume and considerably increases nanoparticle capture efficiency. In this paper, we have demonstrated the role of such aggregation on an efficient capture of magnetic nanoparticles (about 80 nm in diameter) in a microfluidic channel equipped with a nickel micropillar array. This array was magnetized by an external uniform magnetic field, of intensity as low as 6-10 kA/m, and experiments were carried out at flow rates ranging between 0.3 and 30 μL/min. Nanoparticle capture is shown to be mostly governed by the Mason number Ma, while the dipolar coupling parameter α does not exhibit a clear effect in the studied range, 1.4 < α < 4.5. The capture efficiency Λ shows a strongly decreasing Mason number behavior, Λ?Ma-1.78 within the range 32 ≤ Ma ≤ 3250. We have proposed a simple theoretical model which considers destructible nanoparticle chains and gives the scaling behavior, Λ?Ma-1.7, close to the experimental findings. © 2016 American Physical Society.en
dc.format.mimetypeapplication/pdfen
dc.language.isoenen
dc.publisherAmerican Physical Societyen
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.sourcePhys. Rev. E2
dc.sourcePhysical Review Een
dc.subjectBROWNIAN MOVEMENTen
dc.subjectEFFICIENCYen
dc.subjectFLOW OF FLUIDSen
dc.subjectMAGNETISMen
dc.subjectMICROFLUIDICSen
dc.subjectNANOPARTICLESen
dc.subjectCAPTURE EFFICIENCYen
dc.subjectMAGNETIC ATTRACTIVE FORCEen
dc.subjectMAGNETIC NANO-PARTICLESen
dc.subjectMICROFLUIDIC CHANNELen
dc.subjectMICROFLUIDIC SEPARATIONSen
dc.subjectNANOPARTICLE CHAINSen
dc.subjectTHEORETICAL MODELINGen
dc.subjectUNIFORM MAGNETIC FIELDSen
dc.subjectNANOMAGNETICSen
dc.titleMicrofluidic separation of magnetic nanoparticles on an ordered array of magnetized micropillarsen
dc.typeArticleen
dc.typeinfo:eu-repo/semantics/articleen
dc.typeinfo:eu-repo/semantics/publishedVersionen
dc.identifier.doi10.1103/PhysRevE.93.062604-
dc.identifier.scopus84975263082-
local.contributor.employeeOrlandi, G., University of Nice-Sophia Antipolis, CNRS, Laboratory of Condensed Matter Physics, UMR 7336, Parc Valrose, Nice, 06100, France
local.contributor.employeeKuzhir, P., University of Nice-Sophia Antipolis, CNRS, Laboratory of Condensed Matter Physics, UMR 7336, Parc Valrose, Nice, 06100, France
local.contributor.employeeIzmaylov, Y., University of Nice-Sophia Antipolis, CNRS, Laboratory of Condensed Matter Physics, UMR 7336, Parc Valrose, Nice, 06100, France
local.contributor.employeeAlves Marins, J., University of Nice-Sophia Antipolis, CNRS, Laboratory of Condensed Matter Physics, UMR 7336, Parc Valrose, Nice, 06100, France
local.contributor.employeeEzzaier, H., University of Nice-Sophia Antipolis, CNRS, Laboratory of Condensed Matter Physics, UMR 7336, Parc Valrose, Nice, 06100, France, Laboratory of Physics of Lamellar Materials and Hybrid Nano-Materials, Faculty of Sciences of Bizerte, University of Carthage, Zarzouna, 7021, Tunisia
local.contributor.employeeRobert, L., Franche-Comté Electronique Mécanique Thermique et Optique, Sciences et Technologies, 15B avenue des Montboucons, Besançon, 25030, France
local.contributor.employeeDoutre, F., University of Nice-Sophia Antipolis, CNRS, Laboratory of Condensed Matter Physics, UMR 7336, Parc Valrose, Nice, 06100, France
local.contributor.employeeNoblin, X., University of Nice-Sophia Antipolis, CNRS, Laboratory of Condensed Matter Physics, UMR 7336, Parc Valrose, Nice, 06100, France
local.contributor.employeeLomenech, C., University of Nice-Sophia Antipolis, CNRS, Laboratory of Condensed Matter Physics, UMR 7336, Parc Valrose, Nice, 06100, France
local.contributor.employeeBossis, G., University of Nice-Sophia Antipolis, CNRS, Laboratory of Condensed Matter Physics, UMR 7336, Parc Valrose, Nice, 06100, France
local.contributor.employeeMeunier, A., University of Nice-Sophia Antipolis, CNRS, Laboratory of Condensed Matter Physics, UMR 7336, Parc Valrose, Nice, 06100, France
local.contributor.employeeSandoz, G., University of Nice-Sophia Antipolis, Institut de Biologie de Valrose - UMR 7277, UMR-S 1091, Parc Valrose, 06100, France
local.contributor.employeeZubarev, A., Urals Federal University, Lenina Avenue 51, Ekaterinburg, 620083, Russian Federation
local.issue6-
local.volume93-
dc.identifier.wos000377508500009-
local.contributor.departmentUniversity of Nice-Sophia Antipolis, CNRS, Laboratory of Condensed Matter Physics, UMR 7336, Parc Valrose, Nice, 06100, France
local.contributor.departmentLaboratory of Physics of Lamellar Materials and Hybrid Nano-Materials, Faculty of Sciences of Bizerte, University of Carthage, Zarzouna, 7021, Tunisia
local.contributor.departmentFranche-Comté Electronique Mécanique Thermique et Optique, Sciences et Technologies, 15B avenue des Montboucons, Besançon, 25030, France
local.contributor.departmentUniversity of Nice-Sophia Antipolis, Institut de Biologie de Valrose - UMR 7277, UMR-S 1091, Parc Valrose, 06100, France
local.contributor.departmentUrals Federal University, Lenina Avenue 51, Ekaterinburg, 620083, Russian Federation
local.identifier.pure1031604-
local.description.order062501-
local.identifier.eid2-s2.0-84975263082-
local.identifier.wosWOS:000377508500009-
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