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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Influence of nanotube length and density on the plasmonic terahertz response of single-walled carbon nanotubes
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Influence of nanotube length and density on the plasmonic terahertz response of single-walled carbon nanotubes

机译:纳米管长度与密度对单壁碳纳米管等离子体硫化的影响

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We measure the conductivity spectra of thin films comprising bundled single-walled carbon nanotubes (CNTs) of different average lengths in the frequency range 0.3-1000 THz and temperature interval 10-530 K. The observed temperature-induced changes in the terahertz conductivity spectra are shown to depend strongly on the average CNT length, with a conductivity around 1 THz that increases/decreases as the temperature increases for short/long tubes. This behaviour originates from the temperature dependence of the electron scattering rate, which we obtain from Drude fits of the measured conductivity in the range 0.3-2 THz for 10 mu m length CNTs. This increasing scattering rate with temperature results in a subsequent broadening of the observed THz conductivity peak at higher temperatures and a shift to lower frequencies for increasing CNT length. Finally, we show that the change in conductivity with temperature depends not only on tube length, but also varies with tube density. We record the effective conductivities of composite films comprising mixtures of WS2 nanotubes and CNTs versus CNT density for frequencies in the range 0.3-1 THz, finding that the conductivity increases/decreases for low/high density films as the temperature increases. This effect arises due to the density dependence of the effective length of conducting pathways in the composite films, which again leads to a shift and temperature dependent broadening of the THz conductivity peak.
机译:我们测量薄膜的电导率光谱,其包含掺杂的单壁碳纳米管(CNT)的频率范围为0.3-1000THz和温度间隔10-530k。在太赫兹电导率光谱中观察到的温度诱导的温度变化是显示在平均CNT长度上强烈依赖,导电率约为1 Thz,随着短/长管的温度增加,随着温度的增加而增加/减小。该行为来自电子散射速率的温度依赖性,我们从测量的电导率的磨损率从0.3-2Th的范围内获得10μm长度CNT。这种随温度的散射率增加导致在较高温度下随后扩展观察到的THz电导峰值,并且向较低频率增加CNT长度。最后,我们表明,电导率的变化不仅取决于管长度,而且随管密度而变化。我们记录了包含WS2纳米管和CNT的混合物的复合膜的有效导电性,而CNT密度为0.3-1至THz的频率,发现在温度升高时,对于低/高密度膜,电导率增加/降低。由于复合薄膜中的有效长度的有效长度的依赖性的密度依赖性,这种效果产生了,这再次导致转变和温度依赖性扩大到THz电导峰。

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