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Disentangling the phase sequence and correlated critical properties in Bi<sub>0.7</sub>La<sub>0.3</sub>FeO<sub>3</sub>: a combined neutron diffraction and Raman scattering study.

ORAL

Abstract

This work addresses the study of the high temperature phase sequence of Bi0.7La0.3FeO3 by undertaking temperature dependent high resolution neutron powder diffraction (NPD) and Raman spectroscopy measurements. The analysis revealed that Bi0.7La0.3FeO3 exhibits an incommensurate modulated orthorhombic Pn21a(00??)000 structure at room temperature, with a weak ferromagnetic behavior, likely arising from a canted antiferromagnetic (c-AFM) ordering. Above T1 = 543 K, the low temperature modulated Pn21a(00??)000 evolves monotonically into a fractionally growing Pnma structure up to TN = 663 K. At 663 K, the low temperature c-AFM phase is suppressed concurrently with the switching of the former into a non-modulated Pn21a structure that continues to coexist with the Pnma one, until the latter is expected to reach the 100% fraction of the sample volume at high temperatures above 733 K. The Pn21a space group is obtained from the Pnma one through the  polar distortion. Neutron diffraction and Raman spectroscopy results provide evidence for the emergence of a noteworthy linear spin-phonon coupling. In this regard, a magnetostructural coupling is observed below TN, revealed by the relation between the weak ferromagnetism of the canted iron spins and the FeO6 octahedra symmetric stretching mode. The correlation between magnetization and structural results from NPD provides definite evidence for the magnetic origin of the structural modulation. The analysis of the temperature dependent magnetization and the magnetic peak intensity as well, yield a critical exponent (β) value of 0.38. The lower limit of the phase coexistence temperature T1 = 543 K, marking the emergence of the Pnma phase, is also associated with the temperature whereupon the modulation magnitude starts to decrease.

Publication: 1. Disentangling the phase sequence and correlated critical properties in Bi0.7La0.3FeO3 by structural studies. Submitted to publication in Phys. Rev. B (2021)<br>2. T.T. Carvalho, B. Manjunath, J. Pérez de la Cruz, V.S. Amaral, J.R.A. Fernandes, A. Almeida, J. Agostinho Moreira, R. Vilarinho, P.B. Tavares, Enhancement of resistivity and magnetization of Bi1-xLaxFe1-yMnyO3 ceramics by composition optimization, J. Alloys Compd. 835 (2020) 1–10. https://doi.org/10.1016/j.jallcom.2020.155404.<br>3. T.T. Carvalho, J.R.A. Fernandes, J. Perez De La Cruz, J. V. Vidal, N.A. Sobolev, F. Figueiras, S. Das, V.S. Amaral, A. Almeida, J. Agostinho Moreira, P.B. Tavares, Room temperature structure and multiferroic properties in Bi 0.7La0.3FeO3 ceramics, J. Alloys Compd. 554 (2013) 97–103. https://doi.org/10.1016/j.jallcom.2012.11.018.

Presenters

  • Joaquim Agostinho Moreira

    FCUP-University of Porto. Portugal, University of Porto

Authors

  • Joaquim Agostinho Moreira

    FCUP-University of Porto. Portugal, University of Porto

  • Mariana Gomes

    University of Porto. Portugal

  • Teresa Tranchete

    University of Porto. Portugal

  • Manjunath Balagopalan

    University of Porto. Portugal

  • Rui Vilarinho Silva

    University of Porto. Portugal

  • Alexandra Gibbs

    HRPD, ISIS Facility, Rutherford Appleton Laboratory, Chilton, Didcot, Oxfordshire. UK

  • Kevin Knight

    Department of Materials Science and Engineering, University of Sheffield, Sheffield. UK

  • José Paixão

    University Coimbra. Portugal

  • Vítor Amaral

    CICECO-AIM and Physics Department, University of Aveiro. Potugal

  • Abilio Almeida

    University of Porto. Portugal, University of Porto

  • Pedro Tavares

    Centro de Química-Vila Real, ECVA, Chemistry Department, Universidade de Trás-os-Montes e Alto Douro. Portugal, Universidade de Trás-os-Montes e Alto Douro