Zero-field-cooled exchange bias effect in phase-segregated La2xAxCoMnO6δ (A=Ba,Ca,Sr;x=0,0.5)

L. T. Coutrim, D. Rigitano, C. Macchiutti, T. J. A. Mori, R. Lora-Serrano, E. Granado, E. Sadrollahi, F. J. Litterst, M. B. Fontes, E. Baggio-Saitovitch, E. M. Bittar, and L. Bufaiçal
Phys. Rev. B 100, 054428 – Published 21 August 2019
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Abstract

In the zero-field-cooled exchange bias (ZEB) effect, the unidirectional magnetic anisotropy is set at low temperatures even when the system is cooled in the absence of an external magnetic field. La1.5Sr0.5CoMnO6 stands out as presenting the largest ZEB reported so far, while for La1.5Ca0.5CoMnO6 the exchange bias field (HEB) is one order of magnitude smaller. Here we show that La1.5Ba0.5CoMnO6 also exhibits a pronounced shift of its magnetic hysteresis loop, with an intermediate HEB value with respect to Ca- and Sr-doped samples. To figure out the microscopic mechanisms responsible for this phenomenon, these compounds were investigated by means of synchrotron x-ray powder diffraction, Raman spectroscopy, muon spin rotation and relaxation, ac and dc magnetization, x-ray absorption spectroscopy (XAS), and x-ray magnetic circular dichroism (XMCD). The parent compound La2CoMnO6 was also studied for comparison as a reference of a non-ZEB material. Our results show that the Ba-, Ca-, and Sr-doped samples present a small amount of phase segregation, and that the ZEB effect is strongly correlated to the system's structure. We also observed that mixed valence states Co2+/Co3+ and Mn4+/Mn3+ are already present at the La2CoMnO6 parent compound, and that Ba2+/Ca2+/Sr2+ partial substitution at the La3+ site leads to a large increase of Co average valence, with a subtle augmentation of Mn formal valence. Estimates of the Co and Mn valences from the L-edge XAS indicate the presence of oxygen vacancies in all samples (0.05δ0.1). Our XMCD results show a great decrease of Co moment for the doped compounds, and they indicate that the shift of the hysteresis curves for these samples is related to uncompensated antiferromagnetic coupling between Co and Mn.

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  • Received 17 May 2019
  • Revised 3 July 2019

DOI:https://doi.org/10.1103/PhysRevB.100.054428

©2019 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied Physics

Authors & Affiliations

L. T. Coutrim1,2, D. Rigitano3, C. Macchiutti4, T. J. A. Mori2, R. Lora-Serrano5, E. Granado3, E. Sadrollahi6, F. J. Litterst4,6, M. B. Fontes4, E. Baggio-Saitovitch4, E. M. Bittar4, and L. Bufaiçal1,*

  • 1Instituto de Física, Universidade Federal de Goiás, 74001-970 Goiânia, GO, Brazil
  • 2Laboratório Nacional de Luz Síncrotron, Centro Nacional de Pesquisa em Energia e Materiais, 13083-970 Campinas, SP, Brazil
  • 3Instituto de Física “Gleb Wataghin”, UNICAMP, 13083-859 Campinas, SP, Brazil
  • 4Centro Brasileiro de Pesquisas Físicas, 22290-180 Rio de Janeiro, RJ, Brazil
  • 5Instituto de Física, Universidade Federal de Uberlândia, 38400-902 Uberlândia-MG, Brazil
  • 6Institut für Physik der Kondensierten Materie, Technische Universität Braunschweig, 38110 Braunschweig, Germany

  • *lbufaical@ufg.br

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Issue

Vol. 100, Iss. 5 — 1 August 2019

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