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dc.contributor.authorRollo, G.-
dc.contributor.authorRonca, A.-
dc.contributor.authorCerruti, P.-
dc.contributor.authorGan, H.P.-
dc.contributor.authorFei, G.-
dc.contributor.authorXia, H.-
dc.contributor.authorGorokhov, G.-
dc.contributor.authorBychanok, D.-
dc.contributor.authorKuzhir, P.-
dc.contributor.authorLavorgna, M.-
dc.contributor.authorAmbrosio, L.-
dc.date.accessioned2022-10-26T11:39:44Z-
dc.date.available2022-10-26T11:39:44Z-
dc.date.issued2020-
dc.identifier.citationPolym 2020;12(8)ru
dc.identifier.urihttps://elib.bsu.by/handle/123456789/288005-
dc.description.abstractElastomer-based porous structures realized by selective laser sintering (SLS) are emerging as a new class of attractive multifunctional materials. Herein, a thermoplastic polyurethane (TPU) powder for SLS was modified by 1 wt.% multi-walled carbon nanotube (MWCNTs) or a mixture of MWCNTs and graphene (GE) nanoparticles (70/30 wt/wt) in order to investigate on both the synergistic effect provided by the two conductive nanostructured carbonaceous fillers and the correlation between formulation, morphology, and final properties of SLS printed porous structures. In detail, porous structures with a porosity ranging from 20% to 60% were designed using Diamond (D) and Gyroid (G) unit cells. Results showed that the carbonaceous fillers improve the thermal stability of the elastomeric matrix. Furthermore, the TPU/1 wt.% MWCNTs-GE-based porous structures exhibit excellent electrical conductivity and mechanical strength. In particular, all porous structures exhibit a robust negative piezoresistive behavior, as demonstrated from the gauge factor (GF) values that reach values of about -13 at 8% strain. Furthermore, the G20 porous structures (20% of porosity) exhibit microwave absorption coeffcients ranging from 0.70 to 0.91 in the 12-18 GHz region and close to 1 at THz frequencies (300 GHz-1 THz). Results show that the simultaneous presence of MWCNTs and GE brings a significant enhancement of specific functional properties of the porous structures, which are proposed as potential actuators with relevant electro-magnetic interference (EMI) shielding properties. ©ru
dc.description.sponsorshipFunding: This research was funded by the Marie Skłodowska-Curie Actions (MSCA) Research and Innovation Staff Exchange (RISE) H2020-MSCA-RISE-2016, Project Acronym: Graphene 3D—Grant Number: 734164, the National Key R&D Program of China (2017YFE01115000), and NATO SPS proposal G5697 CERTAIN project. P.K. is supported by Horizon 2020 IF TURANDOT project 836816 and Academy of Finland Flagship Programme, Photonics Research and Innovation (PREIN), decision 320166. D.B. is thankful for the support by the Tomsk State University Competitiveness Improvement Program. This research was funded by the Marie Sklodowska-Curie Actions (MSCA) Research and Innovation Staff Exchange (RISE) H2020-MSCA-RISE-2016, Project Acronym: Graphene 3D-Grant Number: 734164, the National Key R&D Program of China (2017YFE01115000), and NATO SPS proposal G5697 CERTAIN project. P.K. is supported by Horizon 2020 IF TURANDOT project 836816 and Academy of Finland Flagship Programme, Photonics Research and Innovation (PREIN), decision 320166. D.B. is thankful for the support by the Tomsk State University Competitiveness Improvement Programru
dc.language.isoenru
dc.publisherMDPI AGru
dc.rightsinfo:eu-repo/semantics/openAccessru
dc.subjectЭБ БГУ::ЕСТЕСТВЕННЫЕ И ТОЧНЫЕ НАУКИ::Физикаru
dc.subjectЭБ БГУ::ТЕХНИЧЕСКИЕ И ПРИКЛАДНЫЕ НАУКИ. ОТРАСЛИ ЭКОНОМИКИ::Ядерная техникаru
dc.subjectЭБ БГУ::ТЕХНИЧЕСКИЕ И ПРИКЛАДНЫЕ НАУКИ. ОТРАСЛИ ЭКОНОМИКИ::Электроника. Радиотехникаru
dc.titleOn the synergistic effect of multi-walled carbon nanotubes and graphene nanoplatelets to enhance the functional properties of SLS 3D-printed elastomeric structuresru
dc.typearticleru
dc.rights.licenseCC BY 4.0ru
dc.identifier.DOI10.3390/POLYM12081841-
dc.identifier.scopus85090407314-
Располагается в коллекциях:Статьи НИУ «Институт ядерных проблем»

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