Research article

Improving the structural properties and corrosion behaviour of electroless deposited Ni-P-Zn coatings on mild steel for advanced processes

  • Received: 21 April 2020 Accepted: 16 June 2020 Published: 23 July 2020
  • Hydrated crystal of ZnSO4·7H2O was co-deposited with NiSO4·6H2O, and NaH2PO2·H2O processed electrolyte to develop a ternary phase electroless coating on mild steel for advanced application. The coating was produced in an aqueous nickel electrolyte solution with zinc at a temperature of 90 ℃ and varying time conditions between 20 and 50 min. The effects of the developed coatings on microstructure and physical properties were investigated using scanning electron microscopy (SEM), Energy dispersive spectroscopy (EDS), and optical microscopy. The corrosion characteristics of the coatings examined in 0.5 M H2SO4 and 3.5% NaCl were analyzed using linear potentiodynamic polarization technique. The microstructure revealed that the constituent deposited on the steel. A more uniformly distributed crystallite with minimal pores was observed at 20 min of Ni-P-Zn coating, while the tiniest film was observed at 50 min of the coating without crack. There was also a fully compact grain within the intermetallic matrix of the coating due to the synergetic effect of the electrolyte constituent with the strengthening phase of Zn7Ni4P2, Zn2Ni5P, and Zn3Ni. Corrosion study established that Ni-P-Zn exhibits significant corrosion resistance at the optimum time within the examined environments with little SO42- and Cl- ions.

    Citation: Ojo Sunday Isaac Fayomi, Adedamola Sode, Itopa Godwin Akande, Abimbola Patricia Idowu Popoola, Oluranti Agboola. Improving the structural properties and corrosion behaviour of electroless deposited Ni-P-Zn coatings on mild steel for advanced processes[J]. AIMS Materials Science, 2020, 7(4): 441-452. doi: 10.3934/matersci.2020.4.441

    Related Papers:

  • Hydrated crystal of ZnSO4·7H2O was co-deposited with NiSO4·6H2O, and NaH2PO2·H2O processed electrolyte to develop a ternary phase electroless coating on mild steel for advanced application. The coating was produced in an aqueous nickel electrolyte solution with zinc at a temperature of 90 ℃ and varying time conditions between 20 and 50 min. The effects of the developed coatings on microstructure and physical properties were investigated using scanning electron microscopy (SEM), Energy dispersive spectroscopy (EDS), and optical microscopy. The corrosion characteristics of the coatings examined in 0.5 M H2SO4 and 3.5% NaCl were analyzed using linear potentiodynamic polarization technique. The microstructure revealed that the constituent deposited on the steel. A more uniformly distributed crystallite with minimal pores was observed at 20 min of Ni-P-Zn coating, while the tiniest film was observed at 50 min of the coating without crack. There was also a fully compact grain within the intermetallic matrix of the coating due to the synergetic effect of the electrolyte constituent with the strengthening phase of Zn7Ni4P2, Zn2Ni5P, and Zn3Ni. Corrosion study established that Ni-P-Zn exhibits significant corrosion resistance at the optimum time within the examined environments with little SO42- and Cl- ions.


    加载中


    [1] Anawe PAL, Fayomi OSI, Popoola API (2017) Results in physics investigation of microstructural and physical characteristics of nano composite tin oxide-doped Al3+ in Zn2+ based composite coating by DAECD technique. Results Phys 7: 777-788. doi: 10.1016/j.rinp.2017.01.035
    [2] Dai J, Liu X, Zhai H, et al. (2009) Preparation of Ni-coated Si3N4 powders via electroless plating method. Ceram Int 35: 3407-3410. doi: 10.1016/j.ceramint.2009.06.007
    [3] Du N, Pritzker M (2003) Investigation of electroless plating of Ni-W-P alloy films. J Appl Electrochem 33: 1001-1009. doi: 10.1023/A:1026231532006
    [4] Dai J, Liu X, Zhai H, et al. (2009) Preparation of Ni-coated Si3N4 powders via electroless plating method. Ceram Int 35: 3407-3410. doi: 10.1016/j.ceramint.2009.06.007
    [5] Aydoğdu GH, Aydinol MK (2006) Determination of susceptibility to intergranular corrosion and electrochemical reactivation behaviour of AISI 316L type stainless steel. Corros Sci 48: 3565-3583. doi: 10.1016/j.corsci.2006.01.003
    [6] Ayoola AA, Fayomi OSI, Ogunkanmbi SO (2018) Data in brief data on inhibitive performance of chloraphenicol drug on A315 mild steel in acidic medium. Data in Brief 19: 804-809. doi: 10.1016/j.dib.2018.05.108
    [7] OO A, Nwaokocha C, Adesanya A (2012) Evaluation of corrosion cost of crude oil processing industry. JESTEC 7: 517-518.
    [8] Amin MM, Kee LK, Yunus K (2002) The process of electroplating in the presence of nickel salts. Ultra Sci 14: 309-318.
    [9] Ehteram A, Aish H (2008) Corrosion behavior of mild steel in hydrochloric acid solutions. Int J Electrochem Sci 3: 806-818.
    [10] Equbal A, Dixit NK, Sood AK (2013) Electroless plating on plastic. IJSER 8: 12-18.
    [11] Gao W, Cao D, Jin Y, et al. (2018) Microstructure and properties of Cu-Sn-Zn-TiO2 nano-composite coatings on mild steel. Surf Coat Tech 350: 801-806. doi: 10.1016/j.surfcoat.2018.04.046
    [12] Guo D, Zhang M, Jin Z, et al. (2006) Pulse plating of copper-ZrB2 composite coatings. J Mater Sci Technol 22: 514-518.
    [13] House K, Sernetz F, Dymock D, et al. (2008) Corrosion of orthodontic appliances-should we care? Am J Orthod Dentofac 133: 584-592. doi: 10.1016/j.ajodo.2007.03.021
    [14] Kallappa D, Venkatarangaiah VT (2018) Synthesis of CeO2 doped ZnO nanoparticles and their application in Zn-composite coating on mild steel. Arab J Chem 3: 45-60.
    [15] Krishnan KH, John S, Srinivasan KN, et al. (2006) An overall aspect of electroless Ni-P depositions-A review article. Metall Mater Trans A 37: 1917-1926. doi: 10.1007/s11661-006-0134-7
    [16] Balaraju JN, Narayanan TS, Seshadri SK (2003) Electroless Ni-P composite coatings. J Appl Electrochem 33: 807-816. doi: 10.1023/A:1025572410205
    [17] Agarwala RC, Agarwala V (2003) Electroless alloy/composite coatings: A review. Sadhana-Acad P Eng S 28: 475-493.
    [18] Kumar S, Pande S, Verma P (2015) Factor effecting electro-deposition process. IJCET 5: 700-703.
    [19] Laudisio G, Seipel B, Ruffini A, et al. (2005) Corrosion behavior of Si3N4-TiN composite in sulphuric acid. Corros Sci 47: 1666-1677. doi: 10.1016/j.corsci.2004.07.042
    [20] Pang JN, Jiang SW, Lin H, et al. (2016) Significance of sensitization process in electroless deposition of Ni on nanosized Al2O3 powders. Ceram Int 42: 4491-4497. doi: 10.1016/j.ceramint.2015.11.137
    [21] Popoola API, Fayomi OSI (2016) Effect of some process variables on zinc coated low carbon steel substrates. Sci Res Essays 6: 4264-4272.
    [22] Zarras P, Stenger-Smith JD (2014) Corrosion processes and strategies for prevention: An introduction, In: Makhlouf ASH, Handbook of Smart Coatings for Materials Protection, Woodhead Publishing 64: 3-28.
    [23] Akande IG, Oluwole OO, Fayomi OSI (2018) Optimizing the defensive characteristics of mild steel via the electrodeposition of Zn-Si3N4 reinforcing particles. Def Technol 14: 1-7. doi: 10.1016/j.dt.2017.11.004
    [24] Liu Y, Zhou X, Lyon SB, et al. (2017) An organic coating pigmented with strontium aluminium polyphosphate for corrosion protection of zinc alloy coated steel. Prog Org Coat 102: 29-36. doi: 10.1016/j.porgcoat.2016.02.020
    [25] Ge T, Zhao W, Wu X, et al. (2020) Incorporation of electro conductive carbon fibers to achieve enhanced anti-corrosion performance of zinc rich coatings. J Colloid Interf Sci 567: 113-125. doi: 10.1016/j.jcis.2020.02.002
  • Reader Comments
  • © 2020 the Author(s), licensee AIMS Press. This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0)
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Metrics

Article views(2850) PDF downloads(220) Cited by(1)

Article outline

Figures and Tables

Figures(8)  /  Tables(5)

/

DownLoad:  Full-Size Img  PowerPoint
Return
Return

Catalog