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.
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Presenters
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Elisabeth Bianco
Cornell University
Authors
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Elisabeth Bianco
Cornell University
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Ismail El Baggari
Cornell University, Physics, Cornell University
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Christopher Pasco
Johns Hopkins University
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Berit Goodge
Cornell University, Applied and Engineering Physics, Cornell University
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Tyrel McQueen
Johns Hopkins University, Chemistry, Johns Hopkins Univ, Institute for Quantum Matter and Department of Physics and Astronomy, Johns Hopkins University
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lena Kourkoutis
Cornell University, Applied and Engineering Physics, Cornell University