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Torsional moduli of transition metal dichalcogenide nanotubes from first principles

机译:第一原理转型金属二甲基甲基纳米管的扭转模量

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摘要

We calculate the torsional moduli of single-walled transition metal dichalcogenide (TMD) nanotubes using ab initio density functional theory (DFT). Specifically, considering forty-five select TMD nanotubes, we perform symmetry-adapted DFT calculations to calculate the torsional moduli for the armchair and zigzag variants of these materials in the low-twist regime and at practically relevant diameters. We find that the torsional moduli follow the trend: MS2 > MSe2 > MTe2. In addition, the moduli display a power law dependence on diameter, with the scaling generally close to cubic, as predicted by the isotropic elastic continuum model. In particular, the shear moduli so computed are in good agreement with those predicted by the isotropic relation in terms of the Young's modulus and Poisson's ratio, both of which are also calculated using symmetry-adapted DFT. Finally, we develop a linear regression model for the torsional moduli of TMD nanotubes based on the nature/characteristics of the metal-chalcogen bond, and show that it is capable of making reasonably accurate predictions.
机译:我们用从头算密度泛函理论(DFT)计算了单壁过渡金属二氯化铝(TMD)纳米管的扭转模量。具体来说,考虑到45个选定的TMD纳米管,我们进行了对称性自适应DFT计算,以计算这些材料在低扭曲区域和实际相关直径下的扶手椅和之字形变体的扭转模量。我们发现扭转模量的变化趋势是:MS2>MS2>MTe2。此外,正如各向同性弹性连续介质模型所预测的那样,模量与直径呈幂律关系,标度通常接近立方。特别是,根据杨氏模量和泊松比,如此计算的剪切模量与各向同性关系预测的剪切模量非常一致,这两个值也使用对称自适应DFT计算。最后,我们根据金属硫键的性质/特征,建立了TMD纳米管扭转模量的线性回归模型,并表明它能够做出合理准确的预测。

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