Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
The paper presents the results of research on nanocomposite nickel/graphene oxide (Ni/GO) coatings produced by electrochemical reduction method on a steel substrate. Discussed is the method of manufacturing composite coatings with nickel matrix and embedded graphene oxide flakes. For comparative purposes, the studies also included a nanocrystalline Ni coating without embedded graphene oxide flakes. Graphene oxide was characterized by Raman spectroscopy, infrared spectroscopy (FTIR) and transmission (TEM) and scanning (SEM) electron microscopy. Results of studies on the structure of nickel and composite Ni/GO coatings deposited in a bath containing different amount of graphene oxide are presented. The coatings were characterized by scanning electron microscopy, light microscopy, Raman spectroscopy and X-ray diffraction. The adhesion of the prepared coatings to the substrate was examined by the scratch method. The microhardness of the coatings was measured using the Vickers method on perpendicular cross-sections to the surface. Corrosion tests of the coatings were investigated using the potentiodynamic method. The influence of graphene oxide on the structure and properties of composite coatings deposited from baths with different content of graphene oxide was determined.
Wydawca
Czasopismo
Rocznik
Tom
Strony
1479--1486
Opis fizyczny
Bibliogr. 32 poz., fot., rys., tab.
Twórcy
autor
- Łukasiewicz Research Network - Institute of Precision Mechanics, 3 Duchnicka Str., 01-796 Warszawa, Poland
autor
- Łukasiewicz Research Network - Institute of Precision Mechanics, 3 Duchnicka Str., 01-796 Warszawa, Poland
Bibliografia
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- [3] W. Bartoszek et al., Ochrona przed korozją 61, 36-39 (2018).
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- [6] M. Trzaska, A. Mazurek, Composites Theory and Practice 16, 37-41 (2016).
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- [8] Z. Karaguiozova, et al., Tribology in Industry 39, 444-451 (2017).
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- [10] M. Alishahi, et al., Appl. Surf. Sci. 258, 2439-2446 (2012).
- [11] Sung-Kyu Kim, et al., Trans. Nonferrous Met. Soc. China 21, 68-72 (2011).
- [12] A. Gajewska-Midziałek, Pol. J. Chem. Tech. 20, 54-59 (2018).
- [13] G. Cieślak, M. Trzaska, Pol. J. Chem. Tech. 20, 29-34 (2018).
- [14] C. Liu, et al., Appl. Surf. Sci. 351, 889-896 (2015).
- [15] H. Wu, et al., Surf. Coat. Tech. 272, 25-32 (2015).
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- [20] A. Kozik, et al., Arch. Metall. Mater. 61, 375-380 (2016).
- [21] N. P. Wasekar, et al., Surf. Coat. Tech. 291, 130-140 (2016).
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- [24] W. Konicki, M. Aleksandrzak, E. Mijowska, Pol. J. Chem. Tech. 19, 120-129 (2017).
- [25] M. Trzaska, A. Mazurek, Ochrona przed Korozją 58, 404-406 (2015).
- [26] J. Abdul, et al., RSC Adv. 7, 31100-31109 (2017).
- [27] A. Hovestad, L.J.J. Janssen, J. Appl. Electrochem. 25, 519-527 (1995).
- [28] E. Łągiewka, A. Budniok, Struktura, właściwości i metody badań materiałów otrzymanych elektrolitycznie, Katowice 2010.
- [29] F. Hou, et al., Appl. Surf. Sci. 252, 3812-3817 (2006).
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- [32] G. Cieślak, M. Trzaska, Ochrona przed Korozją 61, 70-73 (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a0d48100-f2cc-4b30-b9d8-69212c575e4f