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Achieving charge neutrality in the intrinsic topological antiferromagnet by hydrogenation.

ORAL

Abstract

Magnetism combined with the nontrivial band topology by breaking time reversal symmetry will gap out otherwise gapless topological surface states, allowing novel topological quantum phases, such as quantum anomalous Hall or axion insulator, to emerge. The newly discovered intrinsic topological magnets in the MnBi2Te4 class are potentially able to host new topological phases at higher temperatures, however bulk conduction in these materials is high (in the 1020 /cc range). Alloying Bi with Sb can provide charge compensation but this process is known to alter the bandstructure of MnBi2-xSbxTe4. Here we show that charge compensation can be achieved continuously by hydrogenation without any changes in the bandstructure. We demonstrate ambipolar conduction and reversible tuning of the Fermi level Eacross the charge neutral point (CNP) in the 80 nm thick antiferromagnetic MnBi2-xSbxTe4 using ionic hydrogen [1]. Near the CNP we explore surface/edge transport by finetuning EF using electrostatic gating — transport under various hydrogenation conditions will be discussed. The technique shows promise for harnessing emergent topological quantum phenomena, such as axion physics, as well as higher-order topological orders.

Publication: [1] H. Deng et al, arXiv:2102.06639 [cond-mat.mtrl-sci] (2021)

Presenters

  • Entela Buzi

    The City College of New York, City College of New York

Authors

  • Entela Buzi

    The City College of New York, City College of New York

  • Ayesha Lakra

    The Graduate Center, City University of, CUNY

  • Haiming Deng

    The City College of New York

  • Lukas Zhao

    The City College of New York

  • Xiaxin Ding

    City College of New York, The City College of New York

  • Jiaqiang Yan

    Oak Ridge National Lab, Oak Ridge National Laboratory, ORNL

  • Lia Krusin-Elbaum

    The City College of New York