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Berry curvature origin of the thickness-dependent anomalous Hall effect in a ferromagnetic Weyl semimetal

机译:厚度依赖性异常霍尔效应的浆果曲率源在铁磁性Weyl半决赛中

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Magnetic Weyl semimetals with spontaneously broken time-reversal symmetry exhibit a large intrinsic anomalous Hall effect originating from the Berry curvature. To employ this large Hall current for room temperature topo-spintronics applications, it is necessary to fabricate these materials as thin or ultrathin films. Here, we experimentally demonstrate that Weyl semimetal Co2MnGa thin films (20-50 nm) show a large anomalous Hall angle ~11.4% at low temperature and ~9.7% at room temperature, which can be ascribed to the non-trivial topology of the band structure with large intrinsic Berry curvature. However, the anomalous Hall angle decreases significantly with thicknesses below 20 nm, which band structure calculations confirm is due to the reduction of the majority spin contribution to the Berry curvature. Our results suggest that Co2MnGa is an excellent material to realize room temperature topo-spintronics applications; however, the significant thickness dependence of the Berry curvature has important implications for thin-film device design.
机译:具有自发破裂的时间反转对称性的磁性Weyl半定物表现出源自浆果曲率的大型内在异常霍尔效果。为了采用这座房间温度Topo-FpintRonics应用的大型霍尔电流,有必要制造这些材料作为薄或超薄薄膜。在这里,我们通过实验证明了Weyl半型Co2mnga薄膜(20-50nm)在低温下显示出大的异常霍尔角〜11.4%,在室温下〜9.7%,这可以归因于带的非琐碎拓扑具有大型内在浆果曲率的结构。然而,异常霍尔角在20nm以下的厚度明显减少,该频带结构计算确认是由于大多数旋转对浆果曲率的贡献。我们的研究结果表明,CO2MNGA是实现室温TOPO-FPINTRONICS应用的优秀材料;然而,浆果曲率的显着厚度依赖性对薄膜装置设计具有重要意义。

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