English

Engineering charge ordering into multiferroicity

Materials Science 2016-06-09 v1

Abstract

Multiferroic materials have attracted great interests but are rare in nature. In many transitional metal oxides, charge ordering and magnetic ordering coexist, so that a method of engineering charge-ordered materials into ferroelectric materials would lead to a large class of multiferroic materials. We propose a strategy for designing new ferroelectric or even multiferroic materials by inserting a spacing layer into each two layers of charge-ordered materials and artificially making a superlattice. One example of the model demonstrated here is the perovskite (LaFeO3_3)2_2/LaTiO3_3 (111) superlattice, in which the LaTiO3_3 layer acts as the donor and the spacing layer, and the LaFeO3_3 layer is half doped and performs charge ordering. The collaboration of the charge ordering and the spacing layer breaks the space inversion symmetry, resulting in a large ferroelectric polarization. As the charge ordering also leads to a ferrimagnetic structure, the (LaFeO3_3)2_2/LaTiO3_3 is multiferroic. It is expected that this work can encourage the designing and experimentally implementation of a large class of multiferroic structures with novel properties.

Keywords

Cite

@article{arxiv.1603.03253,
  title  = {Engineering charge ordering into multiferroicity},
  author = {Xu He and Kui-juan Jin},
  journal= {arXiv preprint arXiv:1603.03253},
  year   = {2016}
}
R2 v1 2026-06-22T13:08:03.234Z