| Literature DB >> 32643949 |
Wen Dong1, Jonathan J P Peters1, Dorin Rusu1, Michael Staniforth1, Alan E Brunier1, James Lloyd-Hughes1, Ana M Sanchez1, Marin Alexe1.
Abstract
Ferroelectric-paraelectric superlattices show emerging new states, such as polar vortices, through the interplay and different energy scales of various thermodynamic constraints. By introducing magnetic coupling at BiFeO3-La0.7Sr0.3MnO3 interfaces epitaxially grown on SrTiO3 substrate, we find, for the first time in thin films, a sub-nanometer thick lamella-like BiFeO3. The emergent phase is characterized by an arrangement of a two unit cell thick lamella-like structure featuring antiparallel polarization, resulting an antiferroelectric-like structure typically associated with a morphotropic phase transition. The antipolar phase is embedded within a nominal R3c structure and is independent of the BiFeO3 thickness (4-30 unit cells). Moreover, the superlattice structure with the morphotropic phase demonstrates azimuth-independent second harmonic generation responses, indicating a change of overall symmetry mediated by a delicate spatial distribution of the emergent phase. This work enriches the understanding of a metastable state manipulated by thermodynamic constraints by lattice strain and magnetic coupling.Entities:
Keywords: BiFeO3; multiferroic; spin−charge−lattice coupling; strain engineering; thin films
Year: 2020 PMID: 32643949 DOI: 10.1021/acs.nanolett.0c02063
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189