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Thermal transport driven by charge imbalance in graphene in a magnetic field close to the charge neutrality point at low temperature: Nonlocal resistance

机译:低温下靠近电荷中性点的磁场中石墨烯中电荷不平衡驱动的热传输:非局部电阻

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摘要

Graphene grown epitaxially on SiC, close to the charge neutrality point (CNP), in an orthogonal magnetic field shows an ambipolar behavior of the transverse resistance accompanied by a puzzling longitudinal magnetoresistance. When injecting a transverse current at one end of the Hall bar, a sizable nonlocal transverse magnetoresistance is measured at low temperature. While Zeeman spin effect seems not to be able to justify these phenomena, some dissipation involving edge states at the boundaries could explain the order of magnitude of the nonlocal transverse magnetoresistance but not the asymmetry when the orientation of the orthogonal magnetic field is reversed. As a possible contribution to the explanation of the measured nonlocal magnetoresistance, which is odd in the magnetic field, we derive a hydrodynamic approach to transport in this system, which involves particle and hole Dirac carriers, in the form of charge and energy currents. We find that thermal diffusion can take place on a large distance scale, thanks to long recombination times, provided a noninsulating bulk of the Hall bar is assumed, as recent models seem to suggest in order to explain the appearance of the longitudinal resistance. In presence of the local source, some leakage of carriers from the edges generates an imbalance of carriers of opposite sign, which are separated in space by the magnetic field and diffuse along the Hall bar generating a nonlocal transverse voltage.
机译:在正交磁场中在接近电荷中性点(CNP)的SiC上外延生长的石墨烯显示出横向电阻的双极性行为,并伴随着令人费解的纵向磁阻。在霍尔棒的一端注入横向电流时,会在低温下测量到相当大的非局部横向磁阻。尽管塞曼自旋效应似乎无法证明这些现象的合理性,但在边界处涉及边缘状态的某些耗散可以解释非局部横向磁阻的数量级,但不能解释当正交磁场的方向反转时的不对称性。为了解释所测的非局部磁阻(在磁场中为奇数)的可能贡献,我们导出了一种在该系统中进行输运的流体动力学方法,其中涉及电荷和能量流形式的粒子和空穴Dirac载流子。我们发现,由于假设了霍尔棒的非绝缘块,热扩散可以在很长的距离范围内发生,这是由于最近的模型似乎是为了说明纵向电阻的出现而提出的。在存在本地电源的情况下,载流子从边缘的某些泄漏会产生相反符号的载流子不平衡,这些载流子在磁场中在空间上分开并沿霍尔棒扩散,从而产生非局部横向电压。

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  • 来源
    《Physical review》 |2019年第15期|155417.1-155417.22|共22页
  • 作者单位

    Univ Napoli Federico II, Dipartimento Fis, Via Cintia, I-80126 Naples, Italy|CNR SPIN, Monte S Angelo Via Cinthia, I-80126 Naples, Italy;

    Univ Napoli Federico II, Dipartimento Fis, Via Cintia, I-80126 Naples, Italy;

    CNR SPIN, Monte S Angelo Via Cinthia, I-80126 Naples, Italy|Univ Calabria Arcavacata Rende, Dipartimento Fis, I-87036 Cosenza, Italy;

    CNR SPIN, Monte S Angelo Via Cinthia, I-80126 Naples, Italy;

    Univ Montpellier, CNRS, Lab Charles Coulomb UMR 5221, F-34095 Montpellier, France;

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