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Influence of rhombohedral stacking order in the electrical resistance of bulk and mesoscopic graphite

机译:菱形堆叠顺序在散装和介读石墨电阻中的影响

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摘要

The electrical, in-plane resistance as a function of temperature R(T) of bulk and mesoscopic thin graphite flakes obtained from the same batch was investigated. Samples thicker than similar to 30 nm show metalliclike contribution in a temperature range that increases with the sample thickness, whereas a semiconductinglike behavior was observed for thinner samples. The temperature dependence of the in-plane resistance of all measured samples and several others from literature can be very well explained between 2 and 1100 K assuming three contributions in parallel: a metalliclike conducting path at the interfaces between crystalline regions, composed of two semiconducting phases, i.e., Bernal and rhombohedral stacking. From the fits of R(T) we obtain a semiconducting energy gap of 110 +/- 20 meV for the rhombohedral and 38 +/- 8 meV for the Bernal phase. The presence of these crystalline phases was confirmed by x-ray diffraction measurements. We review similar experimental data from literature of the last 33 years and two more theoretical models used to fit R(T).
机译:研究了从同一批次获得的体积和介姿薄石墨薄片的温度R(T)的电气,面内电阻。除了与样品厚度增加的温度范围内的30nm厚的样品显示金属状贡献,而观察到较薄的样品,观察到半导体样式的行为。所有测量样品的面内阻的温度依赖性和来自文献的几种来自文献中的几个可以很好地解释在2到1100 k之间,假设三个贡献并联:晶体区域之间的界面处的金属状导电路径,由两个半导体相连组成,即伯尼尔和菱体堆叠。从R(t)的配合来看,我们获得110 +/-20 mev的半导体能量隙,用于菱形和38 +/- 8 Mev,适用于伯纳阶段。通过X射线衍射测量证实了这些结晶相的存在。我们从过去33年的文献中查看了类似的实验数据,以及用于适合R(T)的更多理论模型。

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  • 来源
    《Physical review, B 》 |2017年第4期| 共11页
  • 作者单位

    Univ Leipzig Inst Expt Phys 2 Div Superconduct &

    Magnetism D-04103 Leipzig Germany;

    Univ Leipzig Inst Expt Phys 2 Div Superconduct &

    Magnetism D-04103 Leipzig Germany;

    Univ Leipzig Inst Expt Phys 2 Div Superconduct &

    Magnetism D-04103 Leipzig Germany;

    Univ Leipzig Inst Expt Phys 2 Div Superconduct &

    Magnetism D-04103 Leipzig Germany;

    Univ Leipzig Inst Expt Phys 2 Div Superconduct &

    Magnetism D-04103 Leipzig Germany;

    Univ Leipzig Fak Chem &

    Mineral Inst Mineral Kristallog &

    Mat Wissensch Scharnhorststr 20 D-04275 Leipzig Germany;

    Univ Leipzig Fak Chem &

    Mineral Inst Mineral Kristallog &

    Mat Wissensch Scharnhorststr 20 D-04275 Leipzig Germany;

    Univ Leipzig Inst Med Phys &

    Biophys D-04107 Leipzig Germany;

    Univ Leipzig Inst Med Phys &

    Biophys D-04107 Leipzig Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 固体物理学 ;
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