Flexoelectric control of a ferromagnetic metal
Abstract
Electric fields have played a key role in discovering and controlling exotic electronic states of condensed matter. However, electric fields usually do not work in metals as free carriers tend to screen electrostatic fields. While a pseudo-electric field generated by inhomogeneous lattice strain, namely a flexoelectric field, can in principle work in all classes of materials, it remains experimentally unexplored in metals. Here, using heteroepitaxy and atomic-scale imaging, we show that flexoelectric fields can polarize a metallic oxide SrRuO3 with unexpectedly large Ru off-center displacements. We also observe that the flexoelectrically induced polar state of SrRuO3 leads to sizable lattice expansion, similar to the electrostrictive expansion caused by ionic displacements in dielectrics under an external electric field. We further suggest that flexoelectrically driven Ru off-centering promotes strong coupling between lattice and electronic degrees of freedom, possibly enhancing the ferromagnetism of SrRuO3. Beyond conventional electric fields, flexoelectric fields may universally engender novel electronic states and their control via pure atomic displacements in a nondestructive and fast manner.
Keywords
Cite
@article{arxiv.2203.03199,
title = {Flexoelectric control of a ferromagnetic metal},
author = {Wei Peng and Se Young Park and Chang Jae Roh and Junsik Mun and Hwiin Ju and Jinkwon Kim and Eun Kyo Ko and Zhengguo Liang and Sungsoo Hahn and Jinfeng Zhang and Liang Si and Yong Jin Jo and Tae Heon Kim and Changyoung Kim and Lingfei Wang and Miyoung Kim and Jong Seok Lee and Tae Won Noh and Daesu Lee},
journal= {arXiv preprint arXiv:2203.03199},
year = {2024}
}
Comments
33 pages, 13 figures