| Literature DB >> 35140385 |
Dorin Rusu1, Jonathan J P Peters1,2, Thomas P A Hase1, James A Gott1, Gareth A A Nisbet3, Jörg Strempfer4, Daniel Haskel4, Samuel D Seddon1, Richard Beanland1, Ana M Sanchez1, Marin Alexe5.
Abstract
Ferroics, especially ferromagnets, can form complex topological spin structures such as vortices1 and skyrmions2,3 when subjected to particular electrical and mechanical boundary conditions. Simple vortex-like, electric-dipole-based topological structures have been observed in dedicated ferroelectric systems, especially ferroelectric-insulator superlattices such as PbTiO3/SrTiO3, which was later shown to be a model system owing to its high depolarizing field4-8. To date, the electric dipole equivalent of ordered magnetic spin lattices driven by the Dzyaloshinskii-Moriya interaction (DMi)9,10 has not been experimentally observed. Here we examine a domain structure in a single PbTiO3 epitaxial layer sandwiched between SrRuO3 electrodes. We observe periodic clockwise and anticlockwise ferroelectric vortices that are modulated by a second ordering along their toroidal core. The resulting topology, supported by calculations, is a labyrinth-like pattern with two orthogonal periodic modulations that form an incommensurate polar crystal that provides a ferroelectric analogue to the recently discovered incommensurate spin crystals in ferromagnetic materials11-13. These findings further blur the border between emergent ferromagnetic and ferroelectric topologies, clearing the way for experimental realization of further electric counterparts of magnetic DMi-driven phases.Entities:
Year: 2022 PMID: 35140385 DOI: 10.1038/s41586-021-04260-1
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 69.504