The Experimentalist's Guide to the Cycloid, or Noncollinear Antiferromagnetism in Epitaxial BiFeO<sub>3</sub>.

Burns, Stuart R; Paull, Oliver; Juraszek, Jean; Nagarajan, Valanoor; Sando, Daniel · Adv Mater · 2020

review · Level V

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Abstract

Bismuth ferrite (BiFeO<sub>3</sub> ) is one of the most widely studied multiferroics. The coexistence of ferroelectricity and antiferromagnetism in this compound has driven an intense search for electric-field control of the magnetic order. Such efforts require a complete understanding of the various exchange interactions that underpin the magnetic behavior. An important characteristic of BiFeO<sub>3</sub> is its noncollinear magnetic order; namely, a long-period incommensurate spin cycloid. Here, the progress in understanding this fascinating aspect of BiFeO<sub>3</sub> is reviewed, with a focus on epitaxial films. The advances made in developing the theory used to capture the complexities of the cycloid are first chronicled, followed by a description of the various experimental techniques employed to probe the magnetic order. To help the reader fully grasp the nuances associated with thin films, a detailed description of the spin cycloid in the bulk is provided. The effects of various perturbations on the cycloid are then described: magnetic and electric fields, doping, epitaxial strain, finite size effects, and temperature. To conclude, an outlook on possible device applications exploiting noncollinear magnetism in BiFeO<sub>3</sub> films is presented. It is hoped that this work will act as a comprehensive experimentalist's guide to the spin cycloid in BiFeO<sub>3</sub> thin films.