Literature DB >> 28013545

Room Temperature Magnetically Ordered Polar Corundum GaFeO3 Displaying Magnetoelectric Coupling.

Hongjun Niu1, Michael J Pitcher1, Alex J Corkett1, Sanliang Ling2, Pranab Mandal1, Marco Zanella1, Karl Dawson3, Plamen Stamenov4, Dmitry Batuk5, Artem M Abakumov5,6, Craig L Bull7, Ronald I Smith7, Claire A Murray8, Sarah J Day8, Ben Slater2, Furio Cora2, John B Claridge1, Matthew J Rosseinsky1.   

Abstract

The polar corundum structure type offers a route to new room temperature multiferroic materials, as the partial LiNbO3-type cation ordering that breaks inversion symmetry may be combined with long-range magnetic ordering of high spin d5 cations above room temperature in the AFeO3 system. We report the synthesis of a polar corundum GaFeO3 by a high-pressure, high-temperature route and demonstrate that its polarity arises from partial LiNbO3-type cation ordering by complementary use of neutron, X-ray, and electron diffraction methods. In situ neutron diffraction shows that the polar corundum forms directly from AlFeO3-type GaFeO3 under the synthesis conditions. The A3+/Fe3+ cations are shown to be more ordered in polar corundum GaFeO3 than in isostructural ScFeO3. This is explained by DFT calculations which indicate that the extent of ordering is dependent on the configurational entropy available to each system at the very different synthesis temperatures required to form their corundum structures. Polar corundum GaFeO3 exhibits weak ferromagnetism at room temperature that arises from its Fe2O3-like magnetic ordering, which persists to a temperature of 408 K. We demonstrate that the polarity and magnetization are coupled in this system with a measured linear magnetoelectric coupling coefficient of 0.057 ps/m. Such coupling is a prerequisite for potential applications of polar corundum materials in multiferroic/magnetoelectric devices.

Entities:  

Year:  2017        PMID: 28013545     DOI: 10.1021/jacs.6b11128

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  2 in total

1.  Magnetostriction-polarization coupling in multiferroic Mn2MnWO6.

Authors:  Man-Rong Li; Emma E McCabe; Peter W Stephens; Mark Croft; Liam Collins; Sergei V Kalinin; Zheng Deng; Maria Retuerto; Arnab Sen Gupta; Haricharan Padmanabhan; Venkatraman Gopalan; Christoph P Grams; Joachim Hemberger; Fabio Orlandi; Pascal Manuel; Wen-Min Li; Chang-Qing Jin; David Walker; Martha Greenblatt
Journal:  Nat Commun       Date:  2017-12-11       Impact factor: 14.919

2.  A New Cation-Ordered Structure Type with Multiple Thermal Redistributions in Co2 InSbO6.

Authors:  Kunlang Ji; Elena Solana-Madruga; Midori Amano Patino; Yuichi Shimakawa; J Paul Attfield
Journal:  Angew Chem Int Ed Engl       Date:  2022-04-21       Impact factor: 16.823

  2 in total

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