Mechanical Properties of Small Quasi-Square Graphene Nanoflakes

Crystals Pub Date : 2024-03-28 DOI:10.3390/cryst14040314
Andrés Serna-Gutiérrez, N. A. Cordero
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Abstract

The rise of straintronics—the possibility of fine-tuning the electronic properties of nanosystems by applying strain to them—has enhanced the interest in characterizing the mechanical properties of these systems when they are subjected to tensile (or compressive), shear and torsion strains. Four parameters are customarily used to describe the mechanical behavior of a macroscopic solid within the elastic regime: Young’s and shear moduli, the torsion constant and Poisson’s ratio. There are some relations among these quantities valid for elastic continuous isotropic systems that are being used for 2D nanocrystals without taking into account the non-continuous anisotropic nature of these systems. We present in this work computational results on the mechanical properties of six small quasi-square (aspect ratio between 0.9 and 1.1) graphene nanocrystals using the PM7 semiempirical method. We use the results obtained to test the validity of two relations derived for macroscopic homogeneous isotropic systems and sometimes applied to 2D systems. We show they are not suitable for these nanostructures and pinpoint the origin of some discrepancies in the elastic properties and effective thicknesses reported in the literature. In an attempt to recover one of these formulas, we introduce an effective torsional thickness for graphene analogous to the effective bending thickness found in the literature. Our results could be useful for fitting interatomic potentials in molecular mechanics or molecular dynamics models for finite carbon nanostructures, especially near their edges and for twisted systems.
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小型准方形石墨烯纳米片的力学特性
应变电子学的兴起--通过对纳米系统施加应变对其电子特性进行微调的可能性--提高了人们对描述这些系统在受到拉伸(或压缩)、剪切和扭转应变时的机械特性的兴趣。通常使用四个参数来描述宏观固体在弹性状态下的机械行为:杨氏模量和剪切模量、扭转常数和泊松比。这些量之间存在一些适用于弹性连续各向同性系统的关系,但二维纳米晶体却没有考虑到这些系统的非连续各向异性。我们在这项工作中介绍了使用 PM7 半经验方法对六种小型准方形(纵横比介于 0.9 和 1.1 之间)石墨烯纳米晶体的力学特性进行计算的结果。我们利用所获得的结果来检验为宏观均质各向同性系统推导的、有时应用于二维系统的两个关系的有效性。我们发现这两个关系并不适用于这些纳米结构,并指出了文献中报道的弹性特性和有效厚度存在差异的原因。为了恢复其中一个公式,我们引入了石墨烯的有效扭转厚度,类似于文献中发现的有效弯曲厚度。我们的研究结果可用于拟合有限碳纳米结构的分子力学或分子动力学模型中的原子间位势,尤其是在其边缘附近和扭曲系统中。
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