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Unraveling the Relationship Between Layer Stacking and Magnetic Order in Nb<sub>3</sub>X<sub>8</sub> Systems

ORAL

Abstract

Niobium halides of form Nb3X8 (X=Cl or Br) are cluster-based, 2D materials that exhibit an antiferromagnetic to non-magnetic transition. In Nb3Cl8, the loss of magnetic order occurs below 90 K and has been coupled to a layer re-stacking from a 2-layer (α-phase) to 6-layer (β-phase) unit cell. The transition temperature, however, depends strongly on composition with Nb3Br8 transitioning at 293 K. While tuning magnetic ordering temperature through composition is appealing, the layer re-stacking mechanism is not understood. Here, we used controlled-temperature cryogenic scanning transmission electron microscopy (cryo-STEM) to study the re-stacking in Nb3Br8 with atomic-resolution. Our results reveal a reversible transformation from the α-phase to β-phase at ~250 K upon cooling and the reverse at ~425 K upon heating through a series of intermediate phases. Tracking the emergence of intermediates with electron diffraction and Multislice image simulations provides a clearer picture of favorable stacking configurations for van der Waals Nb3X8. Understanding these stacking changes and their effect on magnetic ordering will afford handles for materials with tailored transition temperatures.

Presenters

  • Elisabeth Bianco

    Cornell University

Authors

  • Elisabeth Bianco

    Cornell University

  • Ismail El Baggari

    Cornell University, Physics, Cornell University

  • Christopher Pasco

    Johns Hopkins University

  • Berit Goodge

    Cornell University, Applied and Engineering Physics, Cornell University

  • Tyrel McQueen

    Johns Hopkins University, Chemistry, Johns Hopkins Univ, Institute for Quantum Matter and Department of Physics and Astronomy, Johns Hopkins University

  • lena Kourkoutis

    Cornell University, Applied and Engineering Physics, Cornell University