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High frequency conductivity in carbon nanotubes

机译:碳纳米管中的高频电导率

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We report on theoretical analysis of high frequency conductivity in carbon nanotubes. Using the kinetic equation with constant relaxation time, an analytical expression for the complex conductivity is obtained. The real part of the complex conductivity is initially negative at zero frequency and become more negative with increasing frequency, until it reaches a resonance minimum at ω ~ ω B for metallic zigzag CNs and ω < ω B for armchair CNs. This resonance enhancement is indicative for terahertz gain without the formation of current instabilities induced by negative dc conductivity. We noted that due to the high density of states of conduction electrons in metallic zigzag carbon nanotubes and the specific dispersion law inherent in hexagonal crystalline structure result in a uniquely high frequency conductivity than the corresponding values for metallic armchair carbon nanotubes. We suggest that this phenomenon can be used to suppress current instabilities that are normally associated with a negative dc differential conductivity.
机译:我们报告了碳纳米管中高频电导率的理论分析。使用具有恒定弛豫时间的动力学方程,可以获得复电导率的解析表达式。复数电导率的实部最初在零频率处为负,并随频率增加而变得负,直到对于金属之字形CNs在ω〜ωB和对于扶手椅CN的ω<ωB处达到共振最小值。这种共振增强表明太赫兹增益,而没有形成由负直流电导率引起的电流不稳定性。我们注意到,由于金属之字形碳纳米管中导电电子的状态密度很高,并且六角形晶体结构中固有的特定色散定律比金属扶手椅状碳纳米管的相应值具有独特的高频电导率。我们建议该现象可用于抑制通常与负dc差分电导率相关的电流不稳定性。

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