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Tunable mechanical behavior of graphene nanoribbon-metal composites fabricated through an electrocharge-assisted process

机译:通过电气辅助工艺制造石墨烯纳米金属复合材料的可调谐力学行为

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摘要

This work investigates the role of a carbon nanophase on the local mechanical behavior of nano-carbon metal composites (NCMCs) produced through an electrocharge-assisted process. Nanoindentation experiments on single crystal Al, Al 1350 parent alloys, and Al 1350 NCMCs revealed variable mechanical properties, caused by an interplay between microstructure and graphitic reinforcements. TEM and AFM studies also reveal nanoscale structural changes based on the incorporation of a carbon nanophase. In order to decouple the effects of the aforementioned mechanical behaviors, molecular dynamics nanoindentation simulations were performed on the (111) surface of Al and Al NCMC samples containing semi-infinite graphene nanoribbons to examine the evolution of plasticity over time. Findings indicate that the arrangement of a finite graphene nanophase within a host matrix can alter plasticity mechanisms and therefore yield strength in near-surface mechanical behaviors with little effect on elastic properties. This understanding should enable further study into tunable bulk properties of Al-based NCMCs while isolating microstructural effects and reinforcement effects of the carbon phase. Such an understanding could lead to application-specific material geometries ranging from high-performing vehicle structures to next-generation electrical devices.
机译:这项工作研究了碳纳米级对通过电充电辅助工艺生产的纳米碳金属复合材料(NCMC)局部力学行为的作用。单晶Al,Al 1350亲本合金的纳米indentation实验和Al 1350 NCMCs揭示了由微观结构和石墨增强件之间的相互作用引起的可变机械性能。 TEM和AFM研究还基于掺入碳纳米相掺入的纳米级结构变化。为了使上述机械行为的效果分离,在含有半无限石墨烯纳米波动率的Al和Al NCMC样品的(111)表面上进行分子动力学纳米indentation模拟,以检查可塑性随时间的进化。结果表明,宿主基质内的有限石墨烯纳米相的布置可以改变可塑性机制,因此在近表面机械行为中产生强度,对弹性性能几乎没有影响。这种理解应进一步研究基于Al的NCMC的可调谐散装性质,同时分离碳阶段的微观结构效应和增强效应。这种理解可能导致特定于应用的材料几何形状,从高性能的车辆结构到下一代电气设备。

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