Preparation of Chitosan–Graphite-Like Carbon-Nitride Biocoatings on AZ91 Magnesium Alloy
- Autores: Kasach A.A.1, Pospelov A.V.2, Osipenko M.A.3, Lazorenko GI.4, Bogdan E.3, Kasprzhitskii A.S.4, Kolchanova N.E.5, Kurilo I.I.3
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Afiliações:
- Department of Chemistry and Technology of Electrochemical Production and Electronic Engineering Materials, Belorussian State Technological University, 220006, Minsk, Belarus
- Center of Physicochemical Research Methods, Belorussian State Technological University, 220006, Minsk, Belarus
- Department of Physical, Colloidal, and Analytical Chemistry, Belorussian State Technological University, 220006, Minsk, Belarus
- Rostov State Transport University, 344038, Rostov-on-Don, Russia
- Department of Microbiology, Virology and Immunology, Gomel State Medical University, Gomel, Belarus
- Edição: Volume 59, Nº 1 (2023)
- Páginas: 54-63
- Seção: НАНОРАЗМЕРНЫЕ И НАНОСТРУКТУРИРОВАННЫЕ МАТЕРИАЛЫ И ПОКРЫТИЯ
- URL: https://permmedjournal.ru/0044-1856/article/view/663837
- DOI: https://doi.org/10.31857/S0044185622100047
- EDN: https://elibrary.ru/BWAMOB
- ID: 663837
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Resumo
In the present study, chitosan coatings modified with g-C3N4 were prepared for AZ91 magnesium alloy. The microstructure of the chitosan–g-C3N4 coatings, depending on the concentration of the particles of the modifying phase in the chitosan solution, was investigated by scanning electron microscopy and X-ray phase analysis. It was found that coatings prepared in suspension of chitosan containing more than 30 g/dm3 g-C3N4 exhibited a complete wettability with a sodium-phosphate buffer solution. Confocal microscopy established the degree of inhibition of E. coli biofilm formation on the surface of the prepared coatings. It was found by using linear voltammetry and electrochemical impedance spectroscopy that the modification of chitosan by the g-C3N4 particles led to an improvement in the protective properties of coatings.
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Sobre autores
A. Kasach
Department of Chemistry and Technology of Electrochemical Production and Electronic Engineering Materials, Belorussian State Technological University, 220006, Minsk, Belarus
Email: kasach2018@bk.ru
Беларусь, 220006, Минск
A. Pospelov
Center of Physicochemical Research Methods, Belorussian State Technological University, 220006, Minsk, Belarus
Email: kasach2018@bk.ru
Беларусь, 220006, Минск
M. Osipenko
Department of Physical, Colloidal, and Analytical Chemistry, Belorussian State Technological University, 220006, Minsk, Belarus
Email: kasach2018@bk.ru
Беларусь, 220006, Минск
G Lazorenko
Rostov State Transport University, 344038, Rostov-on-Don, Russia
Email: kasach2018@bk.ru
Россия, 344038, Ростов-на-Дону
E. Bogdan
Department of Physical, Colloidal, and Analytical Chemistry, Belorussian State Technological University, 220006, Minsk, Belarus
Email: kasach2018@bk.ru
Беларусь, 220006, Минск
A. Kasprzhitskii
Rostov State Transport University, 344038, Rostov-on-Don, Russia
Email: kasach2018@bk.ru
Россия, 344038, Ростов-на-Дону
N. Kolchanova
Department of Microbiology, Virology and Immunology, Gomel State Medical University, Gomel, Belarus
Email: kasach2018@bk.ru
Беларусь, 210009, Витебск
I. Kurilo
Department of Physical, Colloidal, and Analytical Chemistry, Belorussian State Technological University, 220006, Minsk, Belarus
Autor responsável pela correspondência
Email: kasach2018@bk.ru
Беларусь, 220006, Минск
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