Magnetic anisotropy of the layered van der Waals antiferromagnet MnSb<sub>2</sub>Te<sub>4 </sub>
ORAL
Abstract
Recent discovery of van der Waals (vdW) layered antiferromagnets (AFM) of the Mn(Bi,Sb)2Te4 class provides unprecedented opportunities for exploring a richness of magnetic states with non-trivial topology. MnBi2Te4 (MBT) is a confirmed topological insulator, known to host quantum anomalous Hall (QAH) state [1]. MnSb2Te4 (MST) has the same tetradymite-type crystal structure with the R3m space group as MBT, but by contrast to MBT can have a significant population of SbMn antisite defects and has been surmised to be a type II Weyl semimetal. Here we report on magnetic anisotropy deduced from the detailed angular field-dependence of magnetotransport in AFM MST. Negative magnetoresistance (n-MR) is observed under arbitrary field orientation below and above the Néel temperature TN ~ 18.5 K, indicating strong spin scattering in both the AFM and paramagnetic states. However, the low-field dependence of n-MR is strikingly different for H||c and H||ab, rapidly decreasing above the characteristic AFM field H2 ~1.5 T for the former but strictly field-linear for the latter, with the parabolic (∝ B2) positive MR recovered above ~ 6 T. The comparison of magnetic anisotropy obtained from n-MR in MST and MBT and investigated by the DFT calculations will be presented, and the relation to the putative chiral anomaly in MST expected in a Weyl semimetal will be discussed.
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Publication: [1] H. Deng et al, Nature Phys. 17, 36-42 (2021).
Presenters
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Ayesha Lakra
The City College of New York
Authors
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Ayesha Lakra
The City College of New York
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Entela Buzi
The Graduate Center - CUNY, City College of New York
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Afrin N Tamanna
The City College of New York
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Xiaxin Ding
City College of New York
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Kamil Sobczak
University of Warsaw
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Kyungwha Park
Virginia Tech
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Lia Krusin-Elbaum
The City College of New York