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Giant room temperature anomalous Hall effect and tunable topology in a ferromagnetic topological semimetal Co2MnAl

机译:巨型室温异常霍尔效应和可调谐拓扑在铁磁拓扑半标题CO2MOL中

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Weyl semimetals exhibit unusual surface states and anomalous transport phenomena. It is hard to manipulate the band structure topology of specific Weyl materials. Topological transport phenomena usually appear at very low temperatures, which sets challenges for applications. In this work, we demonstrate the band topology modification via a weak magnetic field in a ferromagnetic Weyl semimetal candidate, Co 2 MnAl, at room temperature. We observe a tunable, giant anomalous Hall effect (AHE) induced by the transition involving Weyl points and nodal rings. The AHE conductivity is as large as that of a 3D quantum AHE, with the Hall angle ( Θ H ) reaching a record value ( $$an {Theta }^{H}=0.21$$ tan Θ H = 0.21 ) at the room temperature among magnetic conductors. Furthermore, we propose a material recipe to generate large AHE by gaping nodal rings without requiring Weyl points. Our work reveals an intrinsically magnetic platform to explore the interplay between magnetic dynamics and topological physics for developing spintronic devices.
机译:Weyl Semimetals表现出异形表面状态和异常的运输现象。很难操纵特定Weyl材料的带结构拓扑。拓扑传输现象通常出现在非常低的温度下,这为应用造成了挑战。在这项工作中,我们通过在室温下通过铁磁性Weyl半候选,CO 2 Mnal中的弱磁场展示了带拓扑修饰。我们观察到由涉及Weyl Point和Nodal环的过渡引起的调谐巨大的异常霍尔效应(AHE)。 AHE电导率与3D量子AHE一样大,大厅角度(θH)达到记录值($$ TaN { Theta} ^ {H} = 0.21 $$ TANθh= 0.21)磁导体之间的室温。此外,我们提出了一种材料配方,通过间隙的节点环产生大AHE而不需要Weyl点。我们的工作揭示了一个内在的磁平台,用于探讨磁动力学和拓扑物理学的相互作用,用于开发旋转式装置。

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