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Large magnetic excitation gap in antiferromagnetic YNiO<sub>3</sub> detected by NMR

ORAL

Abstract

The rare-earth nickelate perovskites (RENiO3) are an archetypal family of strongly correlated electron materials. Their antiferromagnetic state with four nickel atoms per period remains poorly studied, even though it has been predicted to be a type-II multiferroic with large polarization. Currently, there is no agreement on the magnetic structure and low-energy spin model for bulk RENiO3. We present 17O nuclear-spin–lattice relaxation measurements demonstrating the presence of a large gap of 30 meV in the magnetic excitation spectrum of YNiO3.
NMR relaxation data on quadrupolar nuclei (spin > 1/2) such as 17O in a polycrystalline or powdered antiferromagnet often seem to contain an unphysical jump in the temperature-dependence of the apparent relaxation rate within the antiferromagnetic state. This jump occurs when the effects of the magnetic order and the electric quadrupole moment on the NMR spectrum become similar in magnitude. We have found a new theoretical expression, which allows us to determine the correct value of the relaxation time T1 for quadrupolar nuclei in antiferromagnetic powders, thus getting rid of this unphysical discontinuity.

Presenters

  • Lukas Korosec

    ETH Zurich and University of Geneva

Authors

  • Lukas Korosec

    ETH Zurich and University of Geneva

  • Dariusz Gawryluk

    Laboratory for Multiscale Materials Experiments, Paul Scherrer Institute, PSI, Paul Scherrer Institute

  • Marisa Medarde

    Paul Scherrer Institute

  • Toni Shiroka

    ETH Zurich and Paul Scherrer Institute, Paul Scherrer Institute

  • Hans Rudolf Ott

    ETH Zurich and Paul Scherrer Institute

  • Joel Mesot

    ETH Zurich and Paul Scherrer Institute