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Aligned carbon nanotube array stiffness from stochastic three-dimensional morphology

机译:对齐碳纳米管阵列刚度随机三维形态

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The landmark theoretical properties of low dimensional materials have driven more than a decade of research on carbon nanotubes (CNTs) and related nanostructures. While studies on isolated CNTs report behavior that aligns closely with theoretical predictions, studies on cm-scale aligned CNT arrays (>10(10) CNTs) oftentimes report properties that are orders of magnitude below those predicted by theory. Using simulated arrays comprised of up to 10(5) CNTs with realistic stochastic morphologies, we show that the CNT waviness, quantified via the waviness ratio (w), is responsible for more than three orders of magnitude reduction in the effective CNT stiffness. Also, by including information on the volume fraction scaling of the CNT waviness, the simulation shows that the observed non-linear enhancement of the array stiffness as a function of the CNT close packing originates from the shear and torsion deformation mechanisms that are governed by the low shear modulus (similar to 1 GPa) of the CNTs.
机译:具有里程碑意义的理论属性的低维材料驱动的多十年的碳纳米管(碳纳米管)和研究相关的纳米结构。碳纳米管与相吻合的报告行为理论预测,研究cm-scale对齐问数组(> 10(10)碳纳米管)通常报告属性数量级低于预测的理论。10(5)组成的阵列碳纳米管现实的随机形态,我们证明通过波浪状问波度,量化比(w),负责三个以上数量级减少有效问刚度。的体积分数缩放问波纹,仿真表明,观察到的非线性增强作为一个函数数组的刚度问的包装源于剪切和扭转变形机制由低剪切模量(类似于1碳纳米管的GPa)。

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