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http://hdl.handle.net/11320/18154
Tytuł: | Structure and electrochemical properties of magnetite and polypyrrole nanocomposites formed by pyrrole oxidation with magnetite nanoparticles |
Autorzy: | Wysocka‑Żołopa, Monika Brzózka, Aleksandra Zambrzycka‑Szelewa, Elżbieta Klekotka, Urszula Kalska‑Szostko, Beata Winkler, Krzysztof |
Słowa kluczowe: | Nanocomposites electrochemistry Magnetic polymers Polypyrroles Core-shell nanoparticles |
Data wydania: | 2023 |
Data dodania: | 28-mar-2025 |
Wydawca: | Springer Nature |
Źródło: | Journal of Solid State Electrochemistry, Volume 27, Issue 7 (2023), p. 1919–1934 |
Abstrakt: | Nanocomposite of magnetic Fe₃O₄ nanoparticles and polypyrrole was prepared under sonication by a new chemical polymerization method during which Fe₃O₄ nanoparticles acted both as a pyrrole oxidant and as a component in the composite material. Synthesis of this nanocomposite was carried out in aqueous solution acidified to pH 2, a prerequisite for the formation of these types of material and to facilitate pyrrole oxidation by Fe₃O₄ nanoparticles. In this way, two kind of materials were produced: Fe₃O₄/PPy nanocomposite in which magnetite nanoparticles were dispersed in PPy matrix and Fe₃O₄-aggregates@ PPy nanocomposite that exhibits structure in which aggregates of magnetite nanoparticles are surrounded by a layer of polymeric phase. In the latter case, the polymerization process took place in the presence of a surfactant. These nanocomposites were characterized by electron microscopy techniques, IR spectroscopy, X-ray powder diffraction, X-ray photoelectron spectroscopy and thermogravimetry. Particular attention was focused on the study of the electrochemical properties of the formed composites. The composite of Fe₃O₄ and PPy exhibits reversible electrochemical behaviour upon oxidation. The electrode process of the polymeric component oxidation in organic solvents such as acetonitrile and dichloromethane is very similar to the process in an aqueous solution. |
Afiliacja: | Monika Wysocka Żołopa - Department of Chemistry, University of Bialystok Aleksandra Brzózka - Department of Chemistry, University of Bialystok Elżbieta Zambrzycka Szelewa - Department of Chemistry, University of Bialystok Urszula Klekotka - Department of Chemistry, University of Bialystok Beata Kalska Szostko - Department of Chemistry, University of Bialystok Krzysztof Winkler - Department of Chemistry, University of Bialystok |
E-mail: | Monika Wysocka-Żołopa: monia@uwb.edu.pl Krzysztof Winkler: winkler@uwb.edu.pl |
Sponsorzy: | This research was funded by Polish National Science Centre grant No. 2020/04/X/ST5/00702 (K.W.). |
URI: | http://hdl.handle.net/11320/18154 |
DOI: | 10.1007/s10008-023-05554-2 |
ISSN: | 1432-8488 |
e-ISSN: | 1433-0768 |
metadata.dc.identifier.orcid: | brakorcid brakorcid brakorcid brakorcid brakorcid 0000-0002-0433-7001 |
Typ Dokumentu: | Article |
metadata.dc.rights.uri: | http://creativecommons.org/licenses/by/4.0/ |
Właściciel praw: | © The Author(s) 2023 This article is licensed under a Creative Commons Attribution 4.0 International License |
Występuje w kolekcji(ach): | Artykuły naukowe (WChem) |
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