4.6 Article

Structural and magnetic transitions in the planar antiferromagnet Ba4Ir3O10

Journal

PHYSICAL REVIEW B
Volume 103, Issue 22, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.103.224420

Keywords

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Funding

  1. U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, Materials Sciences and Engineering Division [DE-AC02-05-CH11231, KC2202]
  2. Miller Institute for Basic Research in Science
  3. Alfred P. Sloan Fellowship in Physics
  4. DOE Office of Science [DE-AC02-06CH11357]
  5. National Science Foundation [DMR-1829070]
  6. Coronavirus CARES Act

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The compound Ba4Ir3O10 exhibits complex structural and magnetic ground state properties, including a pronounced antiferromagnetic transition, magnetic anisotropy, and symmetry lowering due to magnetoelastic coupling. The study suggests the importance of this compound in exploring novel ground states with octahedra trimers.
We report the structural and magnetic ground state properties of the monoclinic compound barium iridium oxide Ba4Ir3O10 using a combination of resonant x-ray scattering, magnetometry, and thermodynamic techniques. Magnetic susceptibility exhibits a pronounced antiferromagnetic transition at T-N approximate to 25 K, a weaker anomaly at T-S approximate to 142 K, and strong magnetic anisotropy at all temperatures. Resonant elastic x-ray scattering experiments reveal a second order structural phase transition at T-S and a magnetic transition at T-N. Both structural and magnetic superlattice peaks are observed at L = half integer values. The magnetization anomaly at T-S implies the presence of magnetoelastic coupling, which conceivably facilitates the symmetry lowering. Mean field critical scattering is observed above T-S. The magnetic structure of the antiferromagnetic ground state is discussed based on the measured magnetic superlattice peak intensity. Our study not only presents essential information for understanding the intertwined structural and magnetic properties in Ba4Ir3O10 but also highlights the necessary ingredients for exploring novel ground states with octahedra trimers.

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