Liu Feixiang, Wang Zhaohui, Du Xian, Li Shubo, Du Wenbo
College of Materials Science and Engineering, Beijing University of Technology, Beijing 100124, China.
Materials (Basel). 2023 Mar 13;16(6):2303. doi: 10.3390/ma16062303.
Due to their excellent mechanical properties and large specific surface area, graphene and its derivatives are widely used in metal matrix composites as reinforcements. In this study, the thermal reduction behavior of large-size graphene oxide are investigated systematically, and reduced graphene oxide (RGO) with few residual oxygen groups and good structural integrity is obtained. ZK61 matrix composites with varying content of in situ RGO are fabricated using the semi-powder metallurgy method. The results reveal that the addition of RGO can cause the refinement of the grains and the second phase, which is attributed to the uniform distribution of the RGO throughout the matrix. The formation of nano-MgO particles is beneficial in increasing the interfacial bonding strength between the RGO and the matrix, resulting in simultaneous increments in yield strength and elongation in the RGO/ZK61 composites. The composite containing 0.6 wt.% RGO shows a superior mechanical property, including microhardness of 79.9 HV, yield strength of 203 MPa and excellent elongation of 17.5%, with increases of 20.9%, 8.6% and 7.4%, respectively, when compared with the ZK61 alloy. Quantitative analysis indicates that the main strengthening mechanisms of RGO-reinforced magnesium matrix composites are load transfer strengthening and grain refinement strengthening.
由于石墨烯及其衍生物具有优异的力学性能和较大的比表面积,它们作为增强体被广泛应用于金属基复合材料中。在本研究中,系统地研究了大尺寸氧化石墨烯的热还原行为,并获得了具有少量残余氧基团和良好结构完整性的还原氧化石墨烯(RGO)。采用半粉末冶金法制备了具有不同原位RGO含量的ZK61基复合材料。结果表明,RGO的加入可导致晶粒和第二相细化,这归因于RGO在整个基体中的均匀分布。纳米MgO颗粒的形成有利于提高RGO与基体之间的界面结合强度,从而使RGO/ZK61复合材料的屈服强度和伸长率同时提高。含有0.6 wt.%RGO的复合材料表现出优异的力学性能,包括显微硬度为79.9 HV、屈服强度为203 MPa和出色的伸长率为17.5%,与ZK61合金相比,分别提高了20.9%、8.6%和7.4%。定量分析表明,RGO增强镁基复合材料的主要强化机制是载荷传递强化和晶粒细化强化。