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Enhanced magnetorheological effect of suspensions based on carbonyl iron particles coated with poly(amidoamine) dendrons

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dc.title Enhanced magnetorheological effect of suspensions based on carbonyl iron particles coated with poly(amidoamine) dendrons en
dc.contributor.author Plachý, Tomáš
dc.contributor.author Cvek, Martin
dc.contributor.author Münster, Lukáš
dc.contributor.author Hanulíková, Barbora
dc.contributor.author Šuly, Pavol
dc.contributor.author Vesel, Alenka
dc.contributor.author Cheng, Qilin
dc.relation.ispartof Rheologica Acta
dc.identifier.issn 0035-4511 Scopus Sources, Sherpa/RoMEO, JCR
dc.date.issued 2021
utb.relation.volume 60
utb.relation.issue 5
dc.citation.spage 263
dc.citation.epage 276
dc.type article
dc.language.iso en
dc.publisher Springer Science and Business Media Deutschland GmbH
dc.identifier.doi 10.1007/s00397-021-01269-1
dc.relation.uri https://link.springer.com/article/10.1007/s00397-021-01269-1
dc.subject carbonyl iron en
dc.subject magnetorheology en
dc.subject yield stress en
dc.subject sedimentation stability en
dc.subject poly(amidoamine) en
dc.description.abstract Particle oxidation constitutes a serious ageing phenomenon in magnetorheological suspensions, bringing about deterioration in performance. This study describes commercial carbonyl iron particles that were successfully coated with poly(amidoamine) dendrons and then applied as an oxidation-resistant dispersed phase in magnetorheological suspensions. A synthesis method was adhered to whereby the particles were sequentially treated with ethylenediamine and methyl acrylate, leading to the formation of generation 2 and 2.5 dendrons; these had the capacity for composite particles with a nano-scale dendritic layer to be prepared on their surfaces. Success in applying the coating was confirmed by various techniques, including XPS, TEM, EDX, FTIR and Raman spectroscopy. The controlled approach adopted to coating the carbonyl iron particles resulted in them exhibiting sufficient oxidation stability, with only an ~ 4.5–4.7% decrease in saturation magnetization. Of interest was that their magnetorheological suspensions demonstrated ca 4.8% and 4% higher dynamic yield stress than a suspension based on non-modified particles at the highest intensity of magnetic field investigated, i.e. 438 kA m–1. Notably, sedimentation stability was evaluated by a unique method that involved the use of a tensiometer with a specific testing probe. The aforementioned coating process led to enhanced sedimentation stability of the magnetorheological suspensions based on coated particles possibly due to decrease in the overall density of the particles, enhanced dispersion stability and reduction in the size of their agglomerates in the silicone oil mixtures that were confirmed by optical microscopy. Modification of the particles as proposed has the potential to overcome one of the primary drawbacks of magnetorheological suspensions, this being oxidation instability (which leads to what is referred to as “in-use-thickening”), without negatively affecting their performance in the presence of a magnetic field. © 2021, The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature. en
utb.faculty University Institute
dc.identifier.uri http://hdl.handle.net/10563/1010286
utb.identifier.obdid 43882518
utb.identifier.scopus 2-s2.0-85103646714
utb.identifier.wok 000636914000001
utb.source j-scopus
dc.date.accessioned 2021-04-14T13:38:03Z
dc.date.available 2021-04-14T13:38:03Z
dc.description.sponsorship Ministry of Education, Youth and Sports of the Czech Republic - DKRVO [RP/CPS/2020/003, RP/CPS/2020/006]; European Regional Development Fund (ERDF)European Commission; state budget of the Czech Republic [CZ.1.05/2.1.00/19.0409]
dc.description.sponsorship RP/CPS/2020/003, RP/CPS/2020/006; Ministerstvo Školství, Mládeže a Tělovýchovy, MŠMT; European Regional Development Fund, ERDF: CZ.1.05/2.1.00/19.0409
utb.ou Centre of Polymer Systems
utb.contributor.internalauthor Plachý, Tomáš
utb.contributor.internalauthor Cvek, Martin
utb.contributor.internalauthor Münster, Lukáš
utb.contributor.internalauthor Hanulíková, Barbora
utb.contributor.internalauthor Šuly, Pavol
utb.contributor.internalauthor Cheng, Qilin
utb.fulltext.sponsorship This work was supported by the Ministry of Education, Youth and Sports of the Czech Republic – DKRVO (RP/CPS/2020/003) and DKRVO (RP/CPS/2020/006). Research was also aided by the Operational Programme Research and Development for Innovations initiative co-funded by the European Regional Development Fund (ERDF) and the state budget of the Czech Republic, within the framework of a Centre of Polymer Systems project (CZ.1.05/2.1.00/19.0409).
utb.wos.affiliation [Plachy, Tomas; Cvek, Martin; Munster, Lukas; Hanulikova, Barbora; Suly, Pavol; Cheng, Qilin] Tomas Bata Univ Zlin, Univ Inst, Ctr Polymer Syst, Trida Tomase Bati 5678, Zlin 76001, Czech Republic; [Plachy, Tomas; Cheng, Qilin] East China Univ Sci & Technol, Sch Mat Sci & Engn, Key Lab Ultrafine Mat, Minist Educ, Shanghai 200237, Peoples R China; [Vesel, Alenka] Jozef Stefan Inst, Dept Surface Engn & Optoelect, Jamova Cesta 39, Ljubljana 1000, Slovenia
utb.scopus.affiliation Centre of Polymer Systems, University Institute, Tomas Bata University in Zlin, Trida Tomase Bati 5678, Zlin, 760 01, Czech Republic; Key Laboratory for Ultrafine Materials of the Ministry of Education, School of Materials Science and Engineering, East China University of Science and Technology, Shanghai, 200237, China; Department of Surface Engineering and Optoelectronics, Jozef Stefan Institute, Jamova cesta 39, Ljubljana, 1000, Slovenia
utb.fulltext.projects RP/CPS/2020/003
utb.fulltext.projects RP/CPS/2020/006
utb.fulltext.projects CZ.1.05/2.1.00/19.0409
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