Surface Wave Propagation on Carbon Nanotube Bundle and Characteristics by High Attenuation

Jay Shankar Kumar, Ashok Kumar
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Abstract

We have studied the surface wave propagation on carbon nanotube bundle and its characteristics by high attenuation. The slow wave propagation along conducting carbon nanotubes and the high conductivity compared with metallic conductors like copper made these structures for high frequency applications. The property reduced the size of antenna and passive circuits. It was found that the complex surface wave propagation has a significant attenuation coefficient at lower frequency band. This attenuation coefficient induces highly damping effect which reduces the active part of the dipole length. Thus, dipole lie always below resonance and input impedance be always capacitive. The conductivity and electromagnetic wave interaction of the conducting carbon nanotubes have also important features in comparison with traditional conductors like copper wires of the same size. The quantum capacitances of the order of the electrostatic capacitance of the transmission line. This property has two main effects on electromagnetic wave propagation along the carbon nanotube transmission line, slow wave propagation and high characteristic impedance. The wave propagation on the arms of the dipole is highly attenuated such that the active part of the dipole is such smaller than the physical length of the dipole itself. Thus, the dipole always be a short dipole and could not be resonant in any case. The result shows that the advantage of size reduction combined with surface wave propagation is used only in high frequency bands above 100 GHz. The attenuation coefficient has a moderate effect in the frequency band from 10 to 100 GHz. The resonance mechanism occurred when the incident wave at the feeding point adds constructively with reflected wave from dipole ends. The obtained results were found in good agreement with previously obtained results.
表面波在碳纳米管束上的传播及其高衰减特性
研究了表面波在碳纳米管束上的传播及其高衰减特性。与铜等金属导体相比,碳纳米管具有沿导电碳纳米管的慢波传播和高导电性,这使得碳纳米管结构适用于高频应用。该特性减小了天线和无源电路的尺寸。研究发现,复合表面波在较低频段具有显著的衰减系数。该衰减系数引起了高阻尼效应,减小了偶极子长度的有源部分。因此,偶极子总是低于谐振,输入阻抗总是容性的。导电碳纳米管的导电性和电磁波相互作用与相同尺寸的铜线等传统导体相比也具有重要的特点。传输线静电电容数量级的量子电容。这种特性对电磁波沿碳纳米管传输线的传播有两个主要影响:慢波传播和高特性阻抗。波在偶极子臂上的传播是高度衰减的,因此偶极子的有效部分比偶极子本身的物理长度要小得多。因此,偶极子总是短偶极子,在任何情况下都不能共振。结果表明,尺寸减小与表面波传播相结合的优势仅在100 GHz以上的高频段才能发挥出来。衰减系数在10 ~ 100ghz频段内影响适中。当馈入点入射波与偶极子端反射波相叠加时,产生共振机制。所得结果与先前所得结果吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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