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Controlled rippling of graphene via irradiation and applied strain modify its mechanical properties: a nanoindentation simulation study

机译:通过辐照和施加应变控制石墨烯的波纹改变其机械性能:纳米压痕模拟研究

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摘要

Ripples, present in free standing graphene, have an important influence in the mechanical behavior of this two-dimensional material. In this work we show through nanoindentation simulations, how out-of-plane displacements can be modified by strain resulting in softening of the membrane under compression and stiffening under tension. Irradiation also induces changes in the mechanical properties of graphene. Interestingly, compressed samples, irradiated at low doses are stiffened by the irradiation while samples under tensile strain do not show significant changes in their mechanical properties. These simulations indicate that vacancies, produced by the energetic ions, cannot be the ones directly responsible for this behavior. However, changes in roughness induced by the momentum transferred from the energetic ions to the membrane, can explain these differences. These results provide an alternative explanation to recent experimental observations of stiffening of graphene under low dose irradiation, as well as paths to tailor the mechanical properties of this material via applied strain and irradiation.
机译:存在于独立式石墨烯中的波纹对这种二维材料的机械性能具有重要影响。在这项工作中,我们通过纳米压痕模拟表明,如何通过应变来改变平面外位移,从而导致膜在压缩下变软并在张力下变硬。辐照还引起石墨烯机械性能的变化。有趣的是,低剂量辐照的压缩样品会因辐照而变硬,而处于拉伸应变下的样品的机械性能没有明显变化。这些模拟表明,由高能离子产生的空位不能直接导致这种行为。但是,由高能离子转移到膜上的动量引起的粗糙度变化可以解释这些差异。这些结果为最近在低剂量辐照下石墨烯变硬的实验观察提供了另一种解释,也提供了通过施加应变和辐照量身定制该材料机械性能的途径。

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