单轴CDW基态插层石墨CaC \(_6\)的霍尔系数

IF 1.6 4区 物理与天体物理 Q3 PHYSICS, APPLIED
Petra Đurkas Grozić, Barbara Keran, Anatoly M. Kadigrobov, Zoran Rukelj, Ivan Kupčić, Danko Radić
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引用次数: 0

摘要

我们用单轴电荷密度波从封闭口袋到开放薄片重建费米表面,评估了表征嵌入石墨CaC \(_6\)中磁输运的霍尔系数。由于典型的序参量对应于电子谱中的伪间隙,从而对应于互易空间中电子轨迹之间的间距,其量级为\(10^2\) K,因此在10T量级的实验可达到的强磁场中,磁击穿是不可避免的。磁导张量分量的经典表达式被磁场辅助过隙隧穿引起的量子干涉强烈地修正。由于磁击穿,所有磁导率分量都发生强量子振荡,反映在霍尔系数中。在它们的本质上,它们不同于标准的舒布尼科夫德哈斯振荡,后者不会出现在具有开放费米表面的系统中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hall Coefficient of the Intercalated Graphite CaC\(_6\) in the Uniaxial CDW Ground State

We evaluate the Hall coefficient characterising magnetotransport in an intercalated graphite CaC\(_6\) with the Fermi surface reconstructed by an uniaxial charge density wave from closed pockets to open sheets. As the typical order parameter, corresponding to the pseudo-gap in electronic spectrum and consequently to spacing between electron trajectories in reciprocal space, is of the order of \(10^2\)K, magnetic breakdown in strong experimentally achievable fields of the order of 10T is inevitable. The classical expressions for the components of the magnetoconductivity tensor are strongly modified by magnetic field-assisted over-gap tunneling causing quantum interference. Due to magnetic breakdown, all magnetoconductivity components undergo strong quantum oscillations reflected in the Hall coefficient. In their nature, these are different than standard Shubnikov de Haas oscillations which would not appear in a system with an open Fermi surface.

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来源期刊
Journal of Superconductivity and Novel Magnetism
Journal of Superconductivity and Novel Magnetism 物理-物理:凝聚态物理
CiteScore
3.70
自引率
11.10%
发文量
342
审稿时长
3.5 months
期刊介绍: The Journal of Superconductivity and Novel Magnetism serves as the international forum for the most current research and ideas in these fields. This highly acclaimed journal publishes peer-reviewed original papers, conference proceedings and invited review articles that examine all aspects of the science and technology of superconductivity, including new materials, new mechanisms, basic and technological properties, new phenomena, and small- and large-scale applications. Novel magnetism, which is expanding rapidly, is also featured in the journal. The journal focuses on such areas as spintronics, magnetic semiconductors, properties of magnetic multilayers, magnetoresistive materials and structures, magnetic oxides, etc. Novel superconducting and magnetic materials are complex compounds, and the journal publishes articles related to all aspects their study, such as sample preparation, spectroscopy and transport properties as well as various applications.
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