Recent Advances in Ni-Mo Electroplating with Nano Particle Bath Additives: A Literature Survey

International Journal of Material Science and Engineering
© 2023 by SSRG - IJMSE Journal
Volume 9 Issue 1
Year of Publication : 2023
Authors : Purshotham P. Katti, B. M. Praveen
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How to Cite?

Purshotham P. Katti, B. M. Praveen, "Recent Advances in Ni-Mo Electroplating with Nano Particle Bath Additives: A Literature Survey," SSRG International Journal of Material Science and Engineering, vol. 9,  no. 1, pp. 22-35, 2023. Crossref, https://doi.org/10.14445/23948884/IJMSE-V9I1P103

Abstract:

Ni-Mo electrodeposition is a process used in electroplating to deposit a coating of nickel and molybdenum onto a substrate. This review explores the methods, parameters, and applications of this process. DC, PC, and PR electrodeposition methods are discussed, along with the parameters that affect the process, including pH, the concentration of ions, temperature, and current density. The Ni-Mo coating's high corrosion resistance, wear resistance, and hardness make it suitable for a wide range of applications, including automotive, aerospace, and marine equipment. The Ni-Mo coating can also be used as a barrier layer between different materials to prevent corrosion or diffusion. This review highlights the versatility and effectiveness of the Ni-Mo electrodeposition process in industrial processes.

Keywords:

Coating, Ni-Mo, DC, SEM, XRD, Corrosion.

References:

[1] C. Yang et al., “Electrodeposition of Ni-Mo Alloy Coatings with Enhanced Electrocatalytic Activity and Stability,” Electrochimica Acta, vol. 190, pp. 1063-1070, 2016.
[2] S. Zhao et al., “Effect of Ni-Mo Nanoparticles on the Microstructure and Properties of Electrodeposited Ni-Mo Alloy Coatings,” Surface and Coatings Technology, vol. 375, pp. 620-628, 2019.
[3] X. Feng et al., “Microstructure, corrosion and wear behavior of Ni-Mo alloy coatings containing Ni-Mo nanoparticles,” Applied Surface Science, vol. 422, pp. 252-259, 2017.
[4] Z. Chen et al., “Enhanced Corrosion Resistance and Mechanical Properties of Electrodeposited Ni-Mo Alloy Coatings with the Assistance of Ni-Mo Nanoparticles,” Surface and Coatings Technology, vol. 362, pp. 272-280, 2019.
[5] J. Hu et al., “Influence of Ni-Mo Nanoparticles on the Electrochemical and Mechanical Properties of Ni-Mo Alloy Coatings,” Journal of Alloys and Compounds, vol. 674, pp. 275-281, 2016.
[6] Y. Zhang et al., “Effect of Ni-Mo Nanoparticles on the Electrochemical and Tribological Properties of Ni-Mo Alloy Coatings,” Surface and Coatings Technology, vol. 374, pp. 345-355, 2019.
[7] J. Wang et al., “Effect of Ni-Mo Nanoparticles on the Electrochemical and Tribological Properties of Ni-Mo Alloy Coatings,” Materials Research Express, vol. 5, no. 4, p. 045501, 2018.
[8] Z. Liu, Y. Wang, and Y. Tang, “Effects of Ni-Mo Nanoparticles on the Microstructure and Mechanical Properties of Ni-Mo Alloy Coatings,” Materials Letters, vol. 243, pp. 7-10, 2019.
[9] X. Sun, C. Yang, and J. Liu, “Influence of Ni-Mo Nanoparticles on the Electrochemical and Mechanical Properties of Ni-Mo Alloy Coatings,” Journal of Materials Engineering and Performance, vol. 25, no. 1, pp. 114-121, 2016.
[10] Y. Gao et al., “Corrosion Resistance and Mechanical Properties of Ni-Mo Alloy Coatings Prepared by Electrodeposition with the Addition of Ni-Mo Nanoparticles,” Surface and Coatings Technology, vol. 320, pp. 377-384, 2017.
[11] C. Jia et al., “Effects of Ni-Mo Nanoparticles on the Microstructure and Properties of Ni-Mo Alloy Coatings,” Applied Surface Science, vol. 420, pp. 600-606, 2017.
[12] J. Liu, Y. Guo, and Q. Cai, “Microstructure and Properties of Ni-Mo Alloy Coatings with Ni-Mo Nanoparticles by Electrodeposition,” Materials & Design, vol. 89, pp. 193-201, 2016.
[13] X. Zhang et al., “Effect of Ni-Mo Nanoparticle Concentration on the Microstructure and Properties of Electrodeposited Ni-Mo Alloy Coatings,” Materials Characterization, vol. 136, pp. 11-18, 2018.
[14] D. Yadav et al., “Corrosion Behavior of Electrodeposited Ni-Mo Alloy Coating: Effect of Nanocrystalline Ni-Mo Particle Size and Concentration,” Surface and Coatings Technology, vol. 337, pp. 285-292, 2018.
[15] Y. Liu et al., “Effect of Ni-Mo Nanoparticles on the Microstructure and Properties of Ni-Mo Alloy Coatings,” Surface and Coatings Technology, vol. 320, pp. 402-408, 2017.
[16] S. Xiong et al., “Effect of Ni-Mo Nanoparticles on the Microstructure and Properties of Electrodeposited Ni-Mo Alloy Coatings,” Materials, vol. 13, no. 20, p. 4621, 2020.
[17] Z. Jia et al., “Effect of Ni-Mo Nanoparticles on Microstructure, Corrosion Resistance and Microhardness of Ni-Mo Alloy Coatings,” Applied Surface Science, vol. 481, pp. 601-608, 2019.
[18] W. Xu et al., “Synthesis and Corrosion Behavior of Ni-Mo Alloy Coatings with Different Molybdenum Contents in Sulfate Solution,” Surface and Coatings Technology, vol. 370, pp. 1-9, 2019.
[19] H. Sun et al., “Influence of Ni-Mo Nanoparticles on the Microstructure and Properties of Ni-Mo Alloy Coatings,” Applied Surface Science, vol. 470, pp. 773-781, 2019.
[20] X. Li et al., “Effects of Saccharin on Electrochemical Behavior and Microstructure of Ni-Mo Alloy Coatings,” Surface and Coatings Technology, vol. 383, p. 125153, 2020.
[21] P. Varshney, S. Bhattacharya, and P. Sahoo, “Synthesis and Characterization of Nickel-Molybdenum Nanoparticles Incorporated Ni-Mo Alloy Coatings,” Materials Research Express, vol. 6, no. 1, p. 016528, 2019.
[22] K. M. Raju, V. R. Raju, and B. D. Prasad, “Effect of Mo Concentration on the Mechanical Properties and Corrosion Behaviour of Electrodeposited Ni–Mo Alloy Coatings,” Transactions of the IMF, vol. 96, no. 5, pp. 263-269, 2018.
[23] G. Jyoti, and R. Verma, “Effect of Saccharin Addition on Microstructure, Microhardness and Wear Resistance of Ni–Mo Alloy Coatings,” Materials Research Express, vol. 6, no. 10, p. 106546, 2019.
[24] S. Das, T. Pal, and S. Chakraborty, “Study of Mechanical Properties of Electrodeposited Nickel–Molybdenum Alloy Nanocomposite Coatings,” Journal of Coatings Technology and Research, vol. 15, no. 3, pp. 587-595, 2018.
[25] S. Ahmad, and S. J. Zaidi, “Enhanced Microhardness and Wear Resistance of Ni-Mo Alloy Coating by Incorporation of Molybdenum Nanoparticles,” Journal of Materials Research and Technology, vol. 7, no. 6, pp. 608-617, 2018.
[26] A. N. Siddiquee, A. Gupta, and S. R. Dhakate, “Influence of Nanoparticle Concentration on Ni-Mo Coating: Microstructure, Hardness and Wear Resistance,” Journal of Materials Engineering and Performance, vol. 27, no. 5, pp. 2198-2207, 2018.
[27] S. Bera, S. Dey, & B. Doloi, “Electrodeposition of Ni–Mo Alloy Composite Coatings: Effect of Nanosized Mo Particle Addition,” Journal of Coatings Technology and Research, vol. 14, no. 4, pp. 849-856, 2017.
[28] N. Ali, M.A. Hussain, and M.A. Baig, “Electrodeposition of Ni-Mo Alloy Composite Coatings for Enhanced Corrosion Resistance and Microhardness,” Journal of Materials Science: Materials in Electronics, vol. 29, no. 10, pp. 8467-8478, 2018.
[29] Z. Ranjbar, S. Saviz, and M. Mohammadi, “Electrodeposition of Nanocrystalline Ni–Mo Alloy Coatings: Optimization of Bath Composition and Investigation of Microstructure, Microhardness and Wear Behavior,” Journal of Alloys and Compounds, vol. 711, pp. 20-28, 2017.
[30] P. Kumar, and A. K. Singh, “Study of Electrochemical Behavior of Ni-Mo Alloys Coatings Synthesized by Pulse Electrodeposition Technique,” Journal of Materials Science: Materials in Electronics, vol. 28, no. 6, pp. 4576-4582, 2017.
[31] S. Dey, S. Kundu, and S. Mitra, “Electrodeposition and Characterization of Ternary Ni-Mo-P Nanocomposite Coating: Effect of Saccharin and Nah2po2 Addition,” Surface and Coatings Technology, vol. 384, p. 125314, 2020.
[32] M. Yavuz et al., “Electrodeposition of Ni-Mo Alloy Coatings from a Sulfate Bath Containing Nanoparticles: The Effect of Particle Concentration,” Journal of Applied Electrochemistry, vol. 46, no. 6, pp. 611-620, 2016.
[33] A. Sharma et al., “Enhanced Wear and Corrosion Resistance of Nickel-Molybdenum Composite Coatings by Incorporation of Mo Nanoparticles,” Surface and Coatings Technology, vol. 304, pp. 13-22, 2016.
[34] R. Kargar et al., “Investigation on the Tribological Behavior of Ni-Mo Alloy Nanocomposite Coatings,” Journal of Alloys and Compounds, vol. 696, pp. 1134-1142, 2017.
[35] S. Bera, M. Nandi, and B. Doloi, “Electrodeposition of Ni-Mo Nanocomposite Coating: Influence of Saccharin Addition and Investigation of Mechanical Properties,” Journal of Materials Research and Technology, vol. 9, no. 2, pp. 3019-3030, 2020.
[36] M. Narayanappa, K. Krishnamurthy, and A. Venkataraman, “Study of Ni-Mo Alloy Coatings Electrodeposited from Sulphate Bath Containing Nanoparticles,” Materials Today: Proceedings, vol. 4, no. 2, pp. 1624-1631, 2017.
[37] D. A. Rani, G. Subramanian, and N.G. Renganathan, “Electrodeposition and Characterization of Ni-Mo Alloy Coatings Containing Nanoparticles from Sulfate Bath with Sodium Dodecyl Sulfate,” Journal of Coatings Technology and Research, vol. 16, no. 3, pp. 657- 668, 2019.
[38] Kumar, S., Prasad, R., and Singh, R., “Electrodeposition of Ni-Mo Alloy Coatings with Saccharin Additive from Sulfate Bath Containing Nanoparticles,” Transactions of the Indian Institute of Metals, vol. 74, no. 1, pp. 163-175, 2021.
[39] G. Singh et al., “Fabrication of Ni-Mo Alloy Coating from Sulfate Bath Containing Nanoparticles and Saccharin,” Journal of Materials Research and Technology, vol. 10, pp. 1505-1517, 2021.
[40] R. Devi, S. Kundu, and S. Prakash, “Effect of Ni-Mo Alloy Nanoparticles on the Electroplating Characteristics of Ni-Mo Alloy,” Surface Engineering, vol. 32, no. 7, pp. 503-508, 2016.
[41] R. Prabakaran et al., “Synthesis and Characterization of Ni-Mo Alloy Coatings with Enhanced Mechanical Properties,” Journal of Materials Research and Technology, vol. 7, no. 1, pp. 90-98, 2018.
[42] S. Prabhu, S. Prakash, and S. Kundu, “Electroplating of Ni-Mo Alloy Coatings with Enhanced Corrosion Resistance and Microhardness Using Ni-Mo Nanoparticles,” Surface Engineering, vol. 33, no. 6, pp. 461-467, 2017.
[43] A. Rajalakshmi, S. Sreelatha, and A. Jayachitra, "Synthesis and Characterization of Solanum Nigrum Derived Nanoparticles and Exploration if its Antioxidant, Antibacterial And Anticancer Potentials in in Vitro," SSRG International Journal of Agriculture & Environmental Science, vol. 6, no. 1, pp. 29-36, 2019.
[CrossRef] [Publisher Link]
[44] K. John Joshua, P. Sherjin, and J. Perinba Selvin Raj, "Analysis of Ball Milled Aluminium Alloy 7068 Metal Powders," SSRG International Journal of Mechanical Engineering, vol. 4, no. 8, pp. 6-10, 2017.
[CrossRef] [Google Scholar] [Publisher Link]
[45] M. Yugandhar, B. Prabhakar Kammar, and S. Nallusamy, "Experimental Study and Analysis of Friction Stir Welding on Az-91Mg Alloy by using SEM," International Journal of Engineering Trends and Technology, vol. 70, no. 10, pp. 111-123, 2022.
[CrossRef] [Publisher Link]