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Magnetization governed magnetoresistance anisotropy in topological semimetal CeBi

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arxiv 1910.05247 v1 pith:2KM2AOF5 submitted 2019-10-11 cond-mat.mtrl-sci

Magnetization governed magnetoresistance anisotropy in topological semimetal CeBi

classification cond-mat.mtrl-sci
keywords magnetictopologicalmagnetoresistanceanisotropycebimagnetizationelectronsfield
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Magnetic topological semimetals, the latest member of topological quantum materials, are attracting extensive attention as they may lead to topologically-driven spintronics. Currently, magnetotransport investigations on these materials are focused on anomalous Hall effect. Here, we report on the magnetoresistance anisotropy of topological semimetal CeBi, which has tunable magnetic structures arising from localized Ce 4f electrons and exhibits both negative and positive magnetoresistances, depending on the temperature. We found that the angle dependence of the negative magnetoresistance, regardless of its large variation with the magnitude of the magnetic field and with temperature, is solely dictated by the field-induced magnetization that is orientated along a primary crystalline axis and flops under the influence of a rotating magnetic field. The results reveal the strong interaction between conduction electrons and magnetization in CeBi. They also indicate that magnetoresistance anisotropy can be used to uncover the magnetic behavior and the correlation between transport phenomena and magnetism in magnetic topological semimetals.

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