Temperature induced phase transition from cycloidal to collinear antiferromagnetism in multiferroic BiSmFeO driven by - induced magnetic anisotropy
arXiv:1702.01635 · doi:10.1103/PhysRevB.95.054420
Abstract
In multiferroic BiFeO a cycloidal antiferromagnetic structure is coupled to a large electric polarization at room temperature, giving rise to magnetoelectric functionality that may be exploited in novel multiferroic-based devices. In this paper, we demonstrate that by substituting samarium for 10% of the bismuth ions the periodicity of the room temperature cycloid is increased, and by cooling below K the magnetic structure tends towards a simple G-type antiferromagnet, which is fully established at 1.5 K. We show that this transition results from exchange coupling, which induces a local anisotropy on the iron magnetic moments that destroys the cycloidal order - a result of general significance regarding the stability of non-collinear magnetic structures in the presence of multiple magnetic sublattices.
Accepted in Physical Review B
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