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Polarization Vortices in a Ferromagnetic Metal via Twistronics

Materials Science 2025-05-26 v1 Mesoscale and Nanoscale Physics Strongly Correlated Electrons

Abstract

Recent advances in moire engineering provide new pathways for manipulating lattice distortions and electronic properties in low-dimensional materials. Here, we demonstrate that twisted stacking can induce dipolar vortices in metallic SrRuO3 membranes, despite the presence of free charges that would normally screen depolarizing fields and dipole-dipole interactions. These polarization vortices are correlated with moire-periodic flexoelectricity induced by shear strain gradients, and exhibit a pronounced dependence on the twist angle. In addition, multiferroic behavior emerges below the ferromagnetic Curie temperature of the films, whereby polarization and ferromagnetism coexist and compete, showing opposite twist-angle dependencies of their respective magnitudes. Density functional theory calculations provide insights into the microscopic origin of these observations. Our findings extend the scope of polarization topology design beyond dielectric materials and into metals.

Keywords

Cite

@article{arxiv.2505.17742,
  title  = {Polarization Vortices in a Ferromagnetic Metal via Twistronics},
  author = {Yingzhuo Lun and Xinxin Hu and Qi Ren and Umair Saeed and Kapil Gupta and Bernat Mundet and Ivan Pinto-Huguet and Jose Santiso and Jessica Padilla-Pantoja and Jose Manuel Caicedo Roque and Yunpeng Ma and Qian Li and Gang Tang and David Pesquera and Xueyun Wang and Jiawang Hong and Jordi Arbiol and Gustau Catalan},
  journal= {arXiv preprint arXiv:2505.17742},
  year   = {2025}
}

Comments

Manuscript(14 pages, 4 figures)+Supplementary Information