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Gate Voltage Controllable Non-Equilibrium and Non-Ohmic Behavior in Suspended Carbon Nanotubes

机译:悬浮碳纳米管中栅极电压可控的非平衡和非欧姆行为

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摘要

In this work, we measure the electrical conductance and temperature of individual, suspended quasi-metallic single-walled carbon nanotubes under high voltage biases using Raman spectroscopy, while varying the doping conditions with an applied gate voltage. By applying a gate voltage, the high-bias conductance can be switched dramatically between linear (Ohmic) behavior and nonlinear behavior exhibiting negative differential conductance (NDC). Phonon populations are observed to be in thermal equilibrium under Ohmic conditions but switch to nonequilibrium under NDC conditions. A typical Landauer transport model assuming zero bandgap is found to be inadequate to describe the experimental data. A more detailed model is presented, which incorporates the doping dependence in order to fit this data.
机译:在这项工作中,我们使用拉曼光谱法在高压偏压下测量单个悬浮的准金属单壁碳纳米管的电导率和温度,同时通过施加栅极电压来改变掺杂条件。通过施加栅极电压,可以在呈现负微分电导(NDC)的线性(欧姆)行为和非线性行为之间大幅切换高偏置电导。在欧姆条件下,声子群处于热平衡状态,而在NDC条件下,声子群体转换为非平衡状态。发现假设零带隙的典型Landauer传输模型不足以描述实验数据。提出了更详细的模型,该模型并入了掺杂依赖性,以拟合该数据。

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