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Surface softening regulates size-dependent stiffness of diamond nanowires

机译:表面软化调节钻石纳米线的尺寸依赖性刚度

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Diamond nanowires (NWs) belong to an important class of nanoscale materials for their outstanding potential in mechanical, electrical, and thermal applications. However, their mechanical behavior under pristine and defective conditions remains less understood. This paper reveals a comprehensive understanding of the effective elastic behavior of diamond NWs, and it uncovers surface-softening as the dominant mechanism that regulates their effective behavior. We applied the force-based and energy-based approaches and constructed a comparative analysis to reveal the atomistic basis behind the diameter-dependent elastic properties of the nanowires. Our findings suggest the energy-based approach to produce physically meaningful results, whereas the widely used force-based scheme produces inconsistent size-dependent behavior. Results show that, with increasing diameter, the softening of the surface and the defective regimes decreases. As a direct consequence of the alteration in the softening state, the first-order elastic modulus increases with increasing diameter, whereas the second-order modulus decreases. Also, vacancy defects, even in very dilute concentrations, are found to substantially affect the elastic behavior of the nanowire. Furthermore, surface, core, and defective regimes exhibit very different roles in nanowires of different diameters: the surface regime acts as a softer regime and the core as stiffer, regardless of the diameter. Their cumulative effect is however dominated by the surface in smaller-diameter nanowire-but in wider diameter nanowires it is dominated by the core. As a result, the size-dependent behavior is strictly controlled by the softening state of the surface. The diameter-dependent elastic moduli show a power-law relation, which deviates substantially from the simple surface-to-volume ratio. These findings suggest surface-engineering as an important tool for modulating the effective behavior of brittle nanowires.
机译:金刚石纳米线(NWS)属于一类重要的纳米级材料,用于它们在机械,电气和热应用中的出色潜力。然而,原始和缺陷条件下的力学行为仍然不太了解。本文揭示了对金刚石NWS的有效弹性行为的全面了解,并揭示了表面软化作为调节其有效行为的主要机制。我们应用了基于力和基于能量的方法,并构建了比较分析,以揭示纳米线的直径依赖性弹性特性背后的原子基础。我们的研究结果表明,基于能量的方法来产生物理有意义的结果,而基于基于力的基于力的方案产生了不一致的大小相关行为。结果表明,随着直径的增加,表面的软化和缺陷的制度降低。作为软化状态改变的直接后果,一阶弹性模量随着直径的增加而增加,而二阶模量减小。而且,即使在非常稀释的浓度下,也发现空位缺陷基本上影响纳米线的弹性行为。此外,表面,核心和有缺陷的制度在不同直径的纳米线中表现出非常不同的作用:无论直径如何,表面调节器用作更柔软的状态和芯。然而,它们的累积效果由较小直径的纳米线 - 但是宽直径的纳米线,它由芯主导地位。结果,通过表面的软化状态严格控制尺寸依赖性行为。直径依赖性弹性模子显示出功率律关系,其基本上偏离了简单的表面对体积比。这些发现表明表面工程作为调制脆纳米线的有效行为的重要工具。

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