» Articles » PMID: 38644880

Electrodeposited Carbon Nanostructured Nickel Composite Coatings: A Review

Overview
Journal Heliyon
Specialty Social Sciences
Date 2024 Apr 22
PMID 38644880
Authors
Affiliations
Soon will be listed here.
Abstract

The utilization of high-strength materials that can retain their strength after successive use under high mineral moisture (maximum weight of 1098 kg) for aerospace, automotive, and electromagnetic devices is challenging. Generally, coatings of nickel (Ni) and its alloys are utilized in the aforementioned applications, but the continuous use of the system degrades its mechanical stability and structural integrity. For the automotive and aerospace uses, the material should have high mechanical strength, wear tolerance, corrosion resistance, and magnetism. The bare Ni coatings can be altered with enhanced mechanical, tribological and electrochemical performances by using various reinforcements in the coatings. The abundantly used reinforcing agents are mainly carbonaceous nanoallotropes (such as graphene, carbon nanotubes, and diamond) for the fabrication of composite coatings. The current review unfolds the introduction of nickel and the major cause of damage to bare nickel coatings. Moreover, the review sheds light on how to mitigate the damage of nickel coatings with an emphasis on giving a flavor of distinct carbonaceous nanoallotropes. The conjugated studies on mechanical, wear, corrosion, and magnetic behavior of electrodeposited Ni-carbonaceous composite coatings are embraced in the review. Therefore, the present review can be endorsed by the readers for the protection of aircraft, automotive, and electromagnetic appliances.

Citing Articles

Pulsed electroplating of ZrO-reinforced Ni-Cr alloy coatings from the duplex complexing agents-containing bath for engineering applications: Importance of operating conditions.

Safavi M, Soleimanzadeh Ghazijahani S, Rasooli A Heliyon. 2024; 10(18):e37631.

PMID: 39309872 PMC: 11416297. DOI: 10.1016/j.heliyon.2024.e37631.

References
1.
Novoselov K, Geim A, Morozov S, Jiang D, Zhang Y, Dubonos S . Electric field effect in atomically thin carbon films. Science. 2004; 306(5696):666-9. DOI: 10.1126/science.1102896. View

2.
Girishkumar G, Rettker M, Underhile R, Binz D, Vinodgopal K, McGinn P . Single-wall carbon nanotube-based proton exchange membrane assembly for hydrogen fuel cells. Langmuir. 2005; 21(18):8487-94. DOI: 10.1021/la051499j. View

3.
Shu Q, Wei J, Wang K, Zhu H, Li Z, Jia Y . Hybrid heterojunction and photoelectrochemistry solar cell based on silicon nanowires and double-walled carbon nanotubes. Nano Lett. 2009; 9(12):4338-42. DOI: 10.1021/nl902581k. View

4.
Wang X, Zhi L, Mullen K . Transparent, conductive graphene electrodes for dye-sensitized solar cells. Nano Lett. 2007; 8(1):323-7. DOI: 10.1021/nl072838r. View

5.
Rolison D, Long J, Lytle J, Fischer A, Rhodes C, McEvoy T . Multifunctional 3D nanoarchitectures for energy storage and conversion. Chem Soc Rev. 2008; 38(1):226-52. DOI: 10.1039/b801151f. View