Local Disorder-Induced Elevation of Intrinsic Anomalous Hall Conductance in an Electron-Doped Magnetic Weyl Semimetal

Berry连接和曲率 半金属 凝聚态物理 霍尔效应 物理 兴奋剂 Weyl半金属 电导 曲率 电子 费米能级 带隙 拓扑(电路) 电阻率和电导率 几何相位 量子力学 几何学 数学 组合数学
作者
Jianlei Shen,Qiushi Yao,Qingqi Zeng,Hongyi Sun,Xuekui Xi,Guangheng Wu,Wenhong Wang,Baogen Shen,Qihang Liu,Enke Liu
出处
期刊:Physical Review Letters [American Physical Society]
卷期号:125 (8): 086602-086602 被引量:83
标识
DOI:10.1103/physrevlett.125.086602
摘要

Topological materials are expected to show distinct transport signatures owing to their unique band-inversion characteristic and band-crossing points. However, the intentional modulation of such topological responses through experimentally feasible means has yet to be explored in depth. Here, an unusual elevation of the anomalous Hall effect (AHE) is obtained in electron (Ni)-doped magnetic Weyl semimetals Co_{3-x}Ni_{x}Sn_{2}S_{2}, showing peak values in the anomalous Hall-conductivity, Hall-angle, and Hall-factor at a relatively low doping level of x=0.11. The separation of intrinsic and extrinsic contributions using the TYJ scaling model indicates that such a significant enhancement is dominated by the intrinsic mechanism of the electronic Berry curvature. Theoretical calculations reveal that compared with the Fermi-level shifting from electron filling, a usually overlooked effect of doping, that is, local disorder, imposes a striking effect on broadening of the bands and narrowing of the inverted gap, thus resulting in an elevation of the integrated Berry curvature. Our results not only realize an enhancement of the AHE in a magnetic Weyl semimetal, but also provide a practical design principle for modulating the bands and transport properties in topological materials by exploiting the local disorder effect from doping.
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