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Quantized prediction of coefficients of thermal expansion of 3-D CNT-Graphene junctioned carbon nanostructures

机译:3-D CNT-石墨烯结合的碳纳米结构的热膨胀系数的量化预测

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A computational finite element analysis based on a structural molecular mechanics approach was conducted to predict effective coefficients of thermal expansion (CTE) of a novel three-dimensional carbon nanostructure, pillared graphene structure (PGS), which is constituted with several graphene sheets and single-walled carbon nanotubes. Four sets of representative unitcell models were developed atomistically having different geometric parameters of pillar length and inter-pillar distance in the PGS. Periodic boundary conditions were applied to periodic unitcell geometries to yield consistent results. Parametric study shows that both pillar length and inter-pillar distance significantly affect the effective in-plane and through-thickness CTEs. The PGS with smaller inter-pillar distance and larger pillar length yields higher in-plane CTEs, while that with larger inter-pillar distance and smaller pillar length yields higher through-thickness CTE. The calculation yields negative through-thickness CTE at low temperatures (T<100K) for all sets of PGSs, which is associated with the curvature at the junction.
机译:进行了基于结构分子力学方法的计算有限元分析,以预测新型三维碳纳米结构,柱状石墨烯结构(PGS)的有效热膨胀系数(CTE),该结构由数个石墨烯片和单层石墨烯构成。壁碳纳米管。原子地开发了四组具有代表性的单元格模型,它们在PGS中具有不同的柱长和柱间距离几何参数。将周期性边界条件应用于周期性晶胞几何形状以产生一致的结果。参数研究表明,柱长和柱间距离都会显着影响有效的平面内和全厚度CTE。柱间距离较小且柱长较大的PGS会产生较高的面内CTE,而柱间距离较大且柱长较短的PGS会产生较高的通过厚度CTE。对于所有PGS组,计算得出的结果是,在低温下(T <100K),整个厚度的CTE为负,这与结点处的曲率有关。

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