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Effect of extreme mechanical densification on the electrical properties of carbon nanotube micro-yarns

机译:极端机械致密化对碳纳米管微纱电学性能的影响

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摘要

We have explored the effect of high pressure post-treatment in optimizing the properties of carbon nanotube yarns and found that the application of dry hydrostatic pressure reduces porosity and enhances electrical properties. The CNT yarns were prepared by the dry-spinning method directly from CNT arrays made by the hot filament chemical vapour deposition (HF-CVD) process. Mechanical hydrostatic pressure up to 360 MPa induces a decrease in yarn resistivity between 3 and 35, associated with the sample's permanent densification, with CNT yarn diameter reduction of 10-25. However, when increasing the pressure in the 1-3 GPa domain in non-hydrostatic conditions, the recovered samples show lower electrical conductivity. This might be due to concomitant macroscopic effects such as increased twists and damage to the yarn shown by SEM imaging (caused by strong shear stresses and friction) or by the collapse of the CNTs indicated by in situ high pressure Raman spectroscopy data.
机译:我们探究了高压后处理在优化碳纳米管纱线性能方面的效果,发现施加干式静水压力可降低孔隙率并增强电性能。碳纳米管纱线采用干纺法直接从热长丝化学气相沉积(HF-CVD)工艺制成的碳纳米管阵列中制备。高达 360 MPa 的机械静水压力会导致纱线电阻率降低 3% 至 35%,这与样品的永久致密化有关,CNT 纱线直径减小 10%-25%。然而,当在非静水条件下增加1-3 GPa域的压力时,回收的样品显示出较低的电导率。这可能是由于伴随的宏观效应,例如SEM成像显示的纱线扭曲增加和损坏(由强剪切应力和摩擦引起),或者原位高压拉曼光谱数据显示的CNT坍塌。

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