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Altermagnetism in the layered intercalated transition metal dichalcogenide CoNb<sub>4</sub>Se<sub>8</sub>

ORAL

Abstract

Altermagnets (AMs) are a new class of magnetic materials that combine the beneficial spintronics properties of ferromagnets and antiferromagnets, garnering significant attention recently. Here, we have identified altermagnetism in a layered intercalated transition metal diselenide, CoNb4Se8, which crystallizes with an ordered sublattice of intercalated Co atoms between NbSe2 layers. Single crystals are synthesized, and the structural characterizations are performed using single crystal diffraction and scanning tunneling microscopy. Magnetic measurements reveal easy-axis antiferromagnetism below 168 K. Density functional theory (DFT) calculations indicate that A-type antiferromagnetic ordering with easy-axis spin direction is the ground state, which is verified through single crystal neutron diffraction experiments. Electronic band structure calculations in this magnetic state display spin-split bands, confirming altermagnetism in this compound. The layered structure of CoNb4Se8 presents a promising platform for testing various predicted properties associated with altermagnetism.

Presenters

  • Resham B Regmi

    University of Notre Dame, Stavropoulos Center for Complex Quantum Matter, University of Notre Dame, Department of Physics and Astronomy, University of Notre Dame; Stavropoulos Centre for Complex Quantum Matter, University of Notre Dame

Authors

  • Resham B Regmi

    University of Notre Dame, Stavropoulos Center for Complex Quantum Matter, University of Notre Dame, Department of Physics and Astronomy, University of Notre Dame; Stavropoulos Centre for Complex Quantum Matter, University of Notre Dame

  • Hari Bhandari

    University of Notre Dame, Stavropoulos Center for Complex Quantum Matter, George Mason University, Department of Physics and Astronomy, Stavropoulos Center for Complex Quantum Matter, University of Notre Dame, University of Notre Dame, Department of Physics and Astronomy, University of Notre Dame; Stavropoulos Centre for Complex Quantum Matter, University of Notre Dame

  • Bishal Thapa

    George Mason University, Quantum Science and Engineering Center, George Mason University

  • Yiqing Hao

    Oak Ridge National Laboratory

  • Nileema Sharma

    University of Notre Dame, University of Notre Dame, Stavropoulos Center for Complex Quantum Matter

  • James McKenzi

    University of Notre Dame, University of Notre Dame, Stavropoulos Center for Complex Quantum Matter

  • Xinglong Chen

    Argonne National Laboratory

  • Abhijeet Nayak

    University of Notre Dame, Stavropoulos Center for Complex Quantum Matter, Department of Physics and Astronomy, Stavropoulos Center for Complex Quantum Matter, University of Notre Dame

  • Mohamed E Gazzah

    University of Notre Dame, Stavropoulos Center for Complex Quantum Matter, University of Notre Dame

  • Bence Gabor Markus

    University of Notre Dame, Stavropoulos Center for Complex Quantum Matter, University of Notre Dame

  • Laszlo Forro

    University of Notre Dame, Stavropoulos Center for Complex Quantum Matter, University of Notre Dame

  • Xiaolong Liu

    University of Notre Dame, University of Notre Dame, Stavropoulos Center for Complex Quantum Matter, Cornell University

  • John F Mitchell

    Argonne National Laboratory

  • Igor I Mazin

    George Mason University, George Mason University, Quantum Science and Engineering Center, Depertment of Physics and Astronomy, George Mason University; Quantum Science and Engineering Centre, George Mason University

  • Nirmal J Ghimire

    University of Notre Dame, Stavropoulos Center for Complex Quantum Matter, Department of Physics and Astronomy, Stavropoulos Center for Complex Quantum Matter, University of Notre Dame, University of Notre Dame, Department of Physics and Astronomy, University of Notre Dame; Stavropoulos Centre for Complex Quantum Matter, University of Notre Dame