Magnetoelectric effect arising from a field-induced pseudo Jahn-Teller distortion in a rare earth magnet
arXiv:2007.04274 · doi:10.1103/PhysRevMaterials.4.094411
Abstract
Magnetoelectric materials are attractive for several applications, including actuators, switches, and magnetic field sensors. Typical mechanisms for achieving a strong magnetoelectric coupling are rooted in transition metal magnetism. In sharp contrast, here we identify CsEr(MoO4)2 as a magnetoelectric material without magnetic transition metal ions, thus ensuring that the Er ions play a key role in achieving this interesting property. Our detailed study includes measurements of the structural, magnetic, and electric properties of this material. Bulk characterization and neutron powder diffraction show no evidence for structural phase transitions down to 0.3 K and therefore CsEr(MoO4)2 maintains the room temperature P2/c space group over a wide temperature range without external magnetic field. These same measurements also identify collinear antiferromagnetic ordering of the Er3+ moments below TN = 0.87 K. Complementary dielectric constant and pyroelectric current measurements reveal that a ferroelectric phase (P ~ 0.5 nC/cm2) emerges when applying a modest external magnetic field, which indicates that this material has a strong magnetoelectric coupling. We argue that the magnetoelectric coupling in this system arises from a pseudo Jahn-Teller distortion induced by the magnetic field.
9 pages, 8 figures, under revision for resubmission
References in corpus (7)
- Spin current and magneto-electric effect in non-collinear magnets
- Role of the Dzyaloshinskii-Moriya interaction in multiferroic perovskites
- Direct transition from a disordered to a multiferroic phase on a triangular lattice
- Engineering multiferroism in CaMnO
- Non- Mn-driven ferroelectricity in antiferromagnetic BaMnO
- Ferroelectricity driven by the non-centrosymmetric magnetic ordering in multiferroic TbMn_2O_5: a first-principles study
- First-principles study of the lattice and electronic structures of TbMnO