Observation of a multiferroic critical end point
Abstract
The study of abrupt increases in magnetization with magnetic field known as metamagnetic transitions has opened a rich vein of new physics in itinerant electron systems, including the discovery of quantum critical end points with a marked propensity to develop new kinds of order. However, the electric analogue of the metamagnetic critical end point, a "metaelectric" critical end point has not yet been realized. Multiferroic materials wherein magnetism and ferroelectricity are cross-coupled are ideal candidates for the exploration of this novel possibility using magnetic-field (\emph{H}) as a tuning parameter. Herein, we report the discovery of a magnetic-field-induced metaelectric transition in multiferroic BiMnO in which the electric polarization (\emph{P}) switches polarity along with a concomitant Mn spin-flop transition at a critical magnetic field \emph{H}. The simultaneous metaelectric and spin-flop transitions become sharper upon cooling, but remain a continuous crossover even down to 0.5 K. Near the \emph{P}=0 line realized at \emph{H}18 T below 20 K, the dielectric constant () increases significantly over wide field- and temperature (\emph{T})-ranges. Furthermore, a characteristic power-law behavior is found in the \emph{P}(\emph{H}) and (\emph{H}) curves at \emph{T}=0.66 K. These findings indicate that a magnetic-field-induced metaelectric critical end point is realized in BiMnO near zero temperature.
Cite
@article{arxiv.0810.1907,
title = {Observation of a multiferroic critical end point},
author = {Jae Wook Kim and S. Y. Haam and Y. S. Oh and S. Park and S. -W. Cheong and P. A. Sharma and M. Jaime and N. Harrison and Jung Hoon Han and Gun-Sang Jeon and P. Coleman and Kee Hoon Kim},
journal= {arXiv preprint arXiv:0810.1907},
year = {2009}
}
Comments
6 pages, 3 figures