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Large anomalous Hall effect driven by a nonvanishing Berry curvature in the noncolinear antiferromagnet Mn3Ge

机译:非共线性反铁磁体Mn3Ge中Berry曲率不消失所驱动的大异常霍尔效应

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It is well established that the anomalous Hall effect displayed by a ferromagnet scales with its magnetization. Therefore, an antiferromagnet that has no net magnetization should exhibit no anomalous Hall effect. We show that the noncolinear triangular antiferromagnet Mn3Ge exhibits a large anomalous Hall effect comparable to that of ferromagnetic metals; the magnitude of the anomalous conductivity is ~500 (ohm·cm)?1 at 2 K and ~50 (ohm·cm)?1 at room temperature. The angular dependence of the anomalous Hall effect measurements confirms that the small residual in-plane magnetic moment has no role in the observed effect except to control the chirality of the spin triangular structure. Our theoretical calculations demonstrate that the large anomalous Hall effect in Mn3Ge originates from a nonvanishing Berry curvature that arises from the chiral spin structure, and that also results in a large spin Hall effect of 1100 (?/e) (ohm·cm)?1, comparable to that of platinum. The present results pave the way toward the realization of room temperature antiferromagnetic spintronics and spin Hall effect–based data storage devices.
机译:众所周知,铁磁体显示的异常霍尔效应随其磁化强度成比例。因此,没有净磁化的反铁磁体应该没有异常霍尔效应。我们发现,非共线三角形反铁磁体Mn 3 Ge表现出与铁磁性金属相当的大霍尔效应。在2 K时,异常电导率的大小为〜500(ohm·cm)?1 ,在室温下为〜50(ohm·cm)?1 。异常霍尔效应测量的角度依赖性证实,小的残余平面内磁矩除了控制自旋三角形结构的手性外,在观察到的效应中没有作用。我们的理论计算表明,Mn 3 Ge中的大异常霍尔效应源自手性自旋结构引起的无消失的贝瑞曲率,并且还导致了1100(?/ e)(ohm·cm)?1 ,与铂金相当。目前的结果为实现室温反铁磁自旋电子学和基于自旋霍尔效应的数据存储设备铺平了道路。

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