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首页> 外文期刊>Journal of the Physical Society of Japan >Quantum Chaotic Behavior in Zigzag Graphene Nanoribbon: Effect of Impurity and Electric Field
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Quantum Chaotic Behavior in Zigzag Graphene Nanoribbon: Effect of Impurity and Electric Field

机译:Z字形石墨烯纳米墨中的量子混沌行为:杂质与电场的影响

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摘要

Metal-insulator transition in zigzag graphene nanoribbon has been studied using random matrix theory. By employing inverse participation ratio and spectral analysis, our results show that metal-insulator transition occurs in the presence of a random distribution of substitutional nitrogen atoms. We have observed quantum chaotic Wigner energy levelstatistics distribution for low nitrogen concentration. At sufficiently high doping, system is at the begging of transition from Wigner to Poisson distribution. For doped graphene, our calculations indicate that this transition becomes fast by applying transverse electric field. Additionally, a threshold value for the transverse electric field is reported. For this threshold value, the change of the conductivity is drastically and Poisson level-spacing sets in. More interestingly, a negative differential resistance and quasi-ohmic behavior can be found for various values of impurity and electric field, such that for these values quantum chaotic predicts Wigner distribution.
机译:使用随机矩阵理论研究了Z字形石墨烯纳米中的金属绝缘体过渡。通过采用逆参与率和光谱分析,我们的结果表明,在随机分布的替代氮原子的存在下发生金属绝缘体过渡。我们观察到量子混沌Wigner能量水平分布用于低氮浓度。在足够高的兴奋剂时,系统是从Wigner到泊松分布的过渡的乞讨。对于掺杂的石墨烯,我们的计算表明,通过施加横向电场,该转变变得快速。另外,报告了横向电场的阈值。对于该阈值,导电性的变化是急剧上的和泊松电平 - 间隔集合。更有趣的是,可以找到负差分电阻和准欧姆行为,用于杂质和电场的各种值,使得对于这些值量子混沌预测Wigner分布。

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