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首页> 外文期刊>Physical review. B, Condensed Matter And Materials Physics >Multiple Dirac cones and topological magnetism in honeycomb-monolayer transition metal trichalcogenides
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Multiple Dirac cones and topological magnetism in honeycomb-monolayer transition metal trichalcogenides

机译:蜂窝-单层过渡金属三卤化物中的多个狄拉克锥和拓扑磁性

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摘要

The discovery of monolayer graphene has initiated two fertile fields in condensed matter physics: Dirac semimetals and atomically thin layered materials. When these trends meet again in transition metal compounds, which possess spin and orbital degrees of freedom and strong electron correlations, more exotic phenomena are expected to emerge in the cross section of topological states of matter and Mott physics. Here, we show by using ab initio calculations that a monolayer form of transition metal trichalcogenides (TMTs), which has a honeycomb network of Ad and 5d transition metal cations, may exhibit multiple Dirac cones in the electronic structure of the half-filled e_g orbitals. The Dirac cones are gapped by the spin-orbit coupling under the trigonal lattice distortion and, hence, can be tuned by tensile strain. Furthermore, we show that electron correlations and carrier doping turn the multiple Dirac semimetal into a topological ferromagnet with high Chern number. Our findings indicate that the honeycomb-monolayer TMTs provide a good playground for correlated Dirac electrons and topologically nontrivial magnetism.
机译:单层石墨烯的发现引发了凝聚态物理学中的两个肥沃领域:狄拉克半金属和原子薄层材料。当这些趋势在具有自旋和轨道自由度以及强电子相关性的过渡金属化合物中再次遇到时,在物质的拓扑状态和莫特物理学的横截面中将会出现更多的奇异现象。在这里,我们通过从头算计算表明,具有Ad和5d过渡金属阳离子蜂窝网络的单层形式的过渡金属三卤化物(TMTs)在半填充e_g轨道的电子结构中可能表现出多个狄拉克锥。狄拉克锥在三角晶格畸变下通过自旋轨道耦合而间隙,因此可以通过拉伸应变进行调整。此外,我们表明,电子相关性和载流子掺杂将多种狄拉克半金属转变为具有高Chern数的拓扑铁磁体。我们的研究结果表明,蜂窝单层TMT为相关的狄拉克电子和拓扑上无关紧要的磁性提供了一个很好的场所。

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  • 来源
    《Physical review. B, Condensed Matter And Materials Physics》 |2018年第3期|035125.1-035125.8|共8页
  • 作者单位

    Department of Applied Physics, University of Tokyo, Bunkyo, Tokyo 113-8656, Japan;

    CD-FMat, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Ibaraki 305-8568, Japan;

    Department of Applied Physics, University of Tokyo, Bunkyo, Tokyo 113-8656, Japan;

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