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Impact of enhanced interfacial strength on physical, mechanical and tribological properties of copper/reduced graphene oxide composites: Microstructural investigation

机译:增强界面强度对铜/降墨氧化物复合材料物理,机械和摩擦学性质的影响:微观结构调查

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Copper/reduced graphene oxide (rGO) composites were prepared to improve the mechanical and tribological properties of copper without adversely affecting its physical properties in any significant manner. No hazardous chemicals were used for reduced graphene oxide production, which maintained the integrity of layers. For better dispersibility of rGO in the copper matrix, electroless deposition of copper was done on the activated and sensitized rGO surfaces. Different amounts of prepared Copper/rGO nanocomposites were then dispersed in bulk copper using ethanol and finally compacted using spark plasma sintering. The coefficient of friction of copper reinforced with 0.5 wt% of nanocomposite reduced by 77.5% compared to neat copper. The flexural strength of copper reinforced with 0.75 wt% of nanocomposite and modulus of 1 wt% of nanocomposite reinforced copper increased by 15.2% and 31.3%, respectively, with different strengthening mechanisms before and after yield point. The increase in hardness and strength of the material along with thin rGO films in the wear track accounted for the sharp decrease in the coefficient of friction for the composites. There was a minimal and gradual decrease in the physical properties (electrical and thermal conductivities) of the composites with an increase in the amount of reinforcement. The two-step composite fabrication process ensured better dispersion of rGO in the copper matrix, which resulted in even properties throughout the composite.
机译:制备铜/降脂的氧化物(RGO)复合材料以改善铜的机械和摩擦学性质,而不会以任何显着的方式对其物理性质产生不利影响。没有危险化学品用于降低的石墨烯氧化物产生,这保持了层的完整性。为了更好地在铜基中的Rgo分散性,在活化和敏化的RGO表面上完成铜的无电沉积。然后使用乙醇将不同量的制备的铜/ rgo纳米复合材料分散在散装铜中,并使用火花等离子体烧结压实。与整齐的铜相比,用0.5wt%的纳米复合材料加固铜的摩擦系数减少了77.5%。用0.75wt%的纳米复合材料增强铜的弯曲强度和1wt%的纳米复合材料增强铜的模量分别增加了15.2%和31.3%,屈服点前后具有不同的强化机制。材料的硬度和强度的增加以及磨损轨道中的薄rgo膜占复合材料摩擦系数的急剧下降。复合材料的物理性质(电气和导热率)的逐渐减小,增强量增加。两步复合制造工艺确保在铜基质中更好地分散RGO,这导致整个复合材料中的均匀性。

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