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Mathematical Modelling for a C{sub}60 Carbon Nanotube Oscillator

机译:用于C {SUB} 60碳纳米管振荡器的数学建模

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The discovery of fullerenes C{sub}60 and carbon nanotubes has created an enormous impact on nanotechnology. Because of their unique mechanical and electronic properties, such as low weight, high strength, flexibility and thermal stability, fullerenes C{sub}60 and carbon nanotubes are of considerable interest to researchers from many scientific areas. One problem that has attracted much attention is the creation of gigahertz oscillators. While there are difficulties for micromechanical oscillators, or resonators, to reach a frequency in the gigahertz range, it is possible for nanomechanical systems to achieve this. A number of studies have found that the sliding of the inner-shell inside the outer-shell of a multi-walled carbon nanotube can generate oscillatory frequencies up to several gigahertz. In addition, it has been observed that the shorter the inner tube, the higher the frequency, leading to the introduction of a C{sub}60-nanotube oscillator. Thus instead of multi-walled carbon nanotubes, high frequencies can be generated using a fullerene C{sub}60 oscillating inside a single-walled carbon nanotube. In this paper, using the Lennard-Jones potential, we determine the potential for an offset C{sub}60 molecule inside a single-walled carbon nanotube, so as to determine its position with reference to the cross-section of the carbon nanotube. The condition for the C{sub}60 initially at rest outside the carbon nanotube to be sucked in and to start oscillating is also presented together with a mathematical model for the resulting oscillatory motion. This paper summarizes recent results obtained by the present authors.
机译:富勒烯C {Sub} 60和碳纳米管的发现为纳米技术产生了巨大的影响。由于其独特的机械和电子性质,例如低重量,高强度,柔韧性和热稳定性,富勒烯C {Sub} 60和碳纳米管对来自许多科学领域的研究人员具有相当大的兴趣。引起了很多关注的一个问题是创造Gigahertz振荡器。虽然微机械振荡器或谐振器存在困难,但在Gigahertz范围内达到频率,纳米机械系统可以实现这一目标。许多研究发现,在多壁碳纳米管的外壳内部的内壳的滑动可以产生振荡频率,直到几个千兆赫兹。此外,已经观察到内管越短,频率越高,导致引入C {} 60纳米管振荡器。因此,代替多壁碳纳米管,可以使用富勒烯C {Sub} 60在单壁碳纳米管内振荡产生高频率。在本文中,使用Lennard-Jones潜力,确定单壁碳纳米管内偏移的偏移C {亚} 60分子的电位,以便在参考碳纳米管的横截面确定其位置。最初在待吸入和开​​始振荡的碳纳米管外部的C {Sub} 60的条件也与所得到的振荡运动的数学模型一起呈现。本文总结了本作者获得的最近结果。

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