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The effect of SDS surfactant on tensile properties of electrodeposited Ni-Co/SiC nanocomposites

机译:SDS表面活性剂对电沉积Ni-Co / SiC纳米复合材料拉伸性能的影响

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摘要

Ni-Co/SiC nanocomposites were electrodeposited from modified Watts bath containing SiC particles with 50 nm average size. The influence of sodium dodecyl sulphate (SDS) concentration on surface properties of nano-particles, microstructure and mechanical properties of nanocomposites were investigated. The electrodeposition mechanism and particles-cathode interactions were studied by means of cyclic voltammetry (CV) test. The mechanical properties of electrodeposits were investigated by Vickers microhardness and tensile tests. The results indicated that addition of SDS to Ni-Co electrolyte shifted onset of cathodic reactions to higher cathodic potentials and displaced the reduction curve to lower currents at similar potentials due to the adsorption of SDS molecules on cathode surface and suppressing of cathodic reactions. Moreover, addition of SDS to the electrolyte enhanced absolute surface charge and adsorption of metal ions on SiC particles, which in turn, increased the amount and improved the uniform distribution of SiC particles in the deposits. This resulted in considerable enhancement in the microhardness, yield and ultimate tensile strength (UTS) of Ni-Co/SiC deposits. Moreover, addition of SDS up to 0.25 g/L significantly enhanced the elongation to failure of deposits due to impeding the agglomeration of ceramic particles and microstructure refining. Further increase in SDS concentration led to a decrease in ductility due to embrittling of Ni-Co matrix.
机译:从含有50nm平均粒径的SiC颗粒的改良Watts浴中电沉积Ni-Co / SiC纳米复合材料。研究了十二烷基硫酸钠(SDS)浓度对纳米颗粒表面性能,纳米复合材料的微观结构和力学性能的影响。通过循环伏安法(CV)测试研究了电沉积机理和颗粒-阴极相互作用。通过维氏显微硬度和拉伸试验研究了电沉积的机械性能。结果表明,由于SDS分子在阴极表面的吸附和抑制了阴极的作用,向Ni-Co电解质中添加SDS将阴极反应的开始转变为较高的阴极电位,并将还原曲线转移到处于相似电位的较低电流。此外,向电解质中添加SDS可以增强绝对表面电荷和金属离子在SiC颗粒上的吸附,从而增加了SiC颗粒的量并改善了沉积物中SiC颗粒的均匀分布。这大大提高了Ni-Co / SiC镀层的显微硬度,屈服强度和极限抗拉强度(UTS)。此外,加入SDS达到0.25 g / L显着提高了沉积失败的伸长率,原因是阻止了陶瓷颗粒的团聚和微结构的细化。 SDS浓度的进一步增加由于Ni-Co基体的脆化而导致延展性降低。

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