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Electronic structure analysis of EuX<sub>2</sub>As<sub>2</sub> (X=Cd, Zn): elucidating the interplay of crystallographic structure, magnetism, and topology

ORAL

Abstract

A particular family of materials containing Eu are an interesting set of compounds for studying the interplay between structure, magnetism, and topology. To elucidate the factors that control their resistive anisotropy, we are studying EuCd2As2 compared to its analogue EuZn2As2. Replacing Cd with Zn reduces the spin-orbit coupling, the $d$-electrons are more localized, and the Nèel-temperature increases by a factor of two, but DFT calculations show strikingly small total energy differences (∼5 meV) between different magnetic configurations for both EuCd2As2 and EuZn2As2. The implication for experiments is that the magnetic ground-state of EuX2As2 can be manipulated easily by external pressure, strain, or disorder, making EuX2Asan exciting platform for tuning a topological bandstructure through the magnetic order.

Publication: Anisotropy of magnetism and transport in EuX2As2 (X = Cd, Zn), Wang, et al. In preparation.

Presenters

  • Emily M Been

    Stanford University

Authors

  • Emily M Been

    Stanford University

  • Zhi-Cheng Wang

    Boston College

  • Jonathan Gaudet

    National Institute of Standards and Technology, Johns Hopkins University

  • Kyle Fruhling

    Boston College

  • Xiaohan Yao

    Boston College

  • Uwe H Stuhr

    Paul Scherrer Institut

  • Yi Cui

    Stanford University

  • Chunjing Jia

    SLAC - Natl Accelerator Lab, Stanford University; SLAC National Accelerator Laboratory, SLAC National Accelerator Lab

  • Brian Moritz

    SLAC National Accelerator Laboratory & S, SLAC - Natl Accelerator Lab, SLAC National Accelerator Lab, SLAC National Accelerator Laboratory & Stanford University, SLAC National Accelerator Laboratory

  • Thomas P Devereaux

    Stanford Univ, Stanford University; SLAC National Accelerator Laboratory, Stanford University

  • Fazel Tafti

    Boston College