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Atomistic deformation mechanisms of amorphous/polycrystalline metallic nanolaminates

机译:无定形/多晶金属纳米胺的原子变形机制

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A series of multilayer amorphous Cu50Zr50/Cu nanolaminates with consideration of grain boundary characteristics in the Cu layers were constructed and compressed to investigate the atomistic mechanisms of yielding and plastic deformation behavior using large-scale atomistic simulations. The results revealed that yielding occurs initially in the Cu layers through lattice dislocations, while plastic deformation in the amorphous layers is induced by the transfer of dislocation plasticity from the Cu layers, mainly at the intersections of the crystalline amorphous interfaces and grain boundaries. Similar to the roles of defects-like secondary phases, the Cu layers serve as sites for heterogeneous nucleation of embryonic shear bands, as well as barriers to their propagation into mature ones. The coupled interplay between the crystal plasticity and the glassy plasticity in the nanolaminates promotes a more homogeneous redistribution of plastic deformation, providing a kind of hardening mechanism. In addition, our simulations also demonstrate a transition of the deformation mode from localized to homogeneous-like deformation by tailoring the relative volume fraction of the Cu layers. The findings provide more detailed atomistic information for understanding the underlying deformation mechanisms that are difficult to obtain by post-mortem observations and are useful for optimizing the structure of amorphous/crystalline metallic nanolaminates.
机译:考虑到Cu层中的晶界特性的一系列多层无定形CU50ZR50 / Cu纳米胺被构造并压缩,以研究使用大规模原子模拟的屈服和塑性变形行为的原子制造机制。结果表明,通过晶格脱位最初在Cu层中发生屈服,而无定形层中的塑性变形是通过从Cu层转移的,主要在结晶非晶界面和晶界的交叉点。类似于缺陷的次生阶段的作用,Cu层用作胚胎剪切带的异质成核的位点,以及它们在成熟的植物中的屏障。纳米胺中晶体塑性和玻璃状塑性之间的耦合相互作用促进了更均匀的塑性变形再分配,提供了一种硬化机构。此外,我们的模拟还通过根据Cu层的相对体积分数来证明变形模式从本地化到均匀变形的转变。该发现提供了更详细的原子信息,以了解难以通过验尸观察难以获得的潜在变形机制,并且可用于优化无定形/结晶金属纳米胺的结构。

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