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Magnetic-field-enhanced synthesis of single-wall carbon nanotubes in arc discharge

机译:电弧放电中单壁碳纳米管的磁场增强合成

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摘要

The ability to control the properties of single-wall nanotubes (SWNTs) produced in the arc discharge is important for many practical applications. Our experiments suggest that the length of SWNTs significantly increases (up to 4000 nm), along with the purity of the carbon deposit, when the magnetic field is applied to arc discharge. Scanning electron microscopy and transmission electron microscopy analyses have demonstrated that the carbon deposit produced in the magnetic-field-enhanced arc mainly consists of the isolated and bunched SWNTs. A model of a carbon nanotube interaction and growth in the thermal plasma was developed, which considers several important effects such as anode ablation that supplies the carbon plasma in an anodic arc discharge technique, and the momentum, charge, and energy transfer processes between nanotube and plasma. It is shown that the nanotube charge with respect to the plasma as well as nanotube length depend on plasma density and electric field in the interelectrode gap. For instance, nanotube charge changes from negative to positive value with an electron density decrease. The numerical simulations based on the Monte Carlo technique were performed, which explain an increase in the nanotubes produced in the magnetic-field-enhanced arc discharge.
机译:控制电弧放电中产生的单壁纳米管(SWNT)的性能的能力对于许多实际应用很重要。我们的实验表明,当将磁场施加到电弧放电时,SWNT的长度会随着碳沉积物的纯度显着增加(高达4000 nm)。扫描电子显微镜和透射电子显微镜分析表明,在磁场增强电弧中产生的碳沉积物主要由孤立的和成束的SWNT组成。建立了碳纳米管相互作用和在热等离子体中生长的模型,该模型考虑了几个重要的影响,例如采用阳极电弧放电技术为碳等离子体提供阳极烧蚀,以及纳米管与碳纳米管之间的动量,电荷和能量转移过程。等离子体。结果表明,相对于等离子体的纳米管电荷以及纳米管长度取决于等离子体密度和电极间间隙中的电场。例如,随着电子密度的降低,纳米管电荷从负值变为正值。进行了基于蒙特卡洛技术的数值模拟,这说明了在磁场增强的电弧放电中产生的纳米管的增加。

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