Electroless Ni-P/SiC Nanocomposite Coatings With Small Amounts of SiC Nanoparticles for Superior Corrosion Resistance and Hardness

被引:0
作者
Mohammad Islam
Muhammad Rizwan Azhar
Yasir Khalid
Rawaiz Khan
Hany S. Abdo
Mushtaq A. Dar
Olamilekan R. Oloyede
T. David Burleigh
机构
[1] King Saud University,Center of Excellence for Research in Engineering Materials (CEREM), Advanced Manufacturing Institute
[2] Curtin University,Chemical Engineering Department
[3] King Saud University,Department of Chemical Engineering, College of Engineering
[4] Aswan University,Mechanical Design and Materials Department, Faculty of Energy Engineering
[5] University of Leeds,Institute for Materials Research (IMR), School of Chemical & Process Engineering, Faculty of Engineering
[6] New Mexico Institute of Mining and Technology,Materials and Metallurgical Engineering Department
来源
Journal of Materials Engineering and Performance | 2015年 / 24卷
关键词
EIS; electroless process; nanocomposite coatings; nanoindentation; SiC nanoparticles;
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中图分类号
学科分类号
摘要
The addition of silicon carbide (SiC) nanoparticles into electroless nickel (Ni)-based coatings improves both corrosion resistance and mechanical properties of the resulting Ni-P/SiC nanocomposite coatings, making them potential candidate as protective coatings in aggressive environments. Ni-P/SiC nanocomposite coatings were produced from precursor bath with small SiC loading levels (0.25 or 1.0 g/L) and characterized for morphology, corrosion resistance, and hardness. Microstructural examination using FE-SEM and AFM revealed that incorporation of uniformly dispersed SiC nanoparticles leads to smaller nodule size with fine-grain structure and low surface roughness. Electrochemical impedance spectroscopy studies in 4 wt.% NaCl solution showed that the nanocomposite coatings exhibit excellent corrosion resistance, as indicated by high charge-transfer resistance and low double-layer capacitance values of ~137 kΩ cm2 and 19 µF cm−2, respectively. The coatings maintained their structural integrity even after 5 days of saline bath immersion, as there was no cracking in the deposit microstructure besides formation of shallow pits and submicron-sized pores. A two-fold increase in the average hardness value was noticed from 4.5 (pure Ni-P) to 8.5 GPa (Ni-P/SiC coating) which can be ascribed to modified deposit morphology and uniformly dispersed SiC nanoparticles that act as obstacles to plastic deformation.
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页码:4835 / 4843
页数:8
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