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dc.contributor.authorZhou, Linming
dc.contributor.authorDai, Cheng
dc.contributor.authorMeisenheimer, Peter
dc.contributor.authorDas, Sujit
dc.contributor.authorWu, Yongjun
dc.contributor.authorGómez Ortiz, Fernando 
dc.contributor.authorGarcía Fernández, Pablo (físico) 
dc.contributor.authorJunquera Quintana, Francisco Javier 
dc.contributor.authorChen, Long-Qing
dc.contributor.authorRamesh, Ramamoorthy
dc.contributor.authorHong, Zijian
dc.contributor.authorHuang, Yuhui
dc.contributor.otherUniversidad de Cantabriaes_ES
dc.date.accessioned2023-03-20T18:15:35Z
dc.date.available2023-03-20T18:15:35Z
dc.date.issued2022-02-23
dc.identifier.issn1616-3028
dc.identifier.issn1616-301X
dc.identifier.otherPGC2018-096955-B-C41es_ES
dc.identifier.urihttps://hdl.handle.net/10902/28268
dc.description.abstractOrder-disorder transitions are widely explored in various vortex structures in condensed matter physics, that is, in the type-II superconductors and Bose-Einstein condensates. In this study, the ordering of the polar vortex phase in [Pb(Zr0.4Ti0.6)O3]n/(SrTiO3)n (PZT/STO) superlattices is investigated through phase-field simulations. With a large tensile substrate strain, an antiorder vortex state (where the rotation direction of the vortex arrays in the neighboring ferroelectric layers are flipped) is discovered for short-period PZT/STO superlattice. The driving force is the induced in-plane polarization in the STO layers due to the large tensile epitaxial strain. Increasing the periodicity leads to antiorder to disorder transition, resulting from the high energy of the head-to-head/tail-to-tail domain structure in the STO layer. On the other hand, when the periodicity is kept constant in short-period superlattices, the order-disorder-antiorder transition can be engineered by mediating the substrate strain, due to the competition between the induction of out-of-plane (due to interfacial depolarization effect) and in-plane (due to strain) polarization in the STO layer. The 3D ordering of such polar vortices is still a topic of significant current interest and it is envisioned that this study will spur further interest toward the understanding of order?disorder transitions in ferroelectric topological structureses_ES
dc.description.sponsorshipThis work was supported by the Joint Funds of the National Natural Science Foundation of China under grant U21A2067 (Y.W.), and the Fundamental Research Funds for the Central Universities (No. 2021FZZX003-02-03, Z.H.). Z.H. also gratefully acknowledge a start-up grant from Zhejiang University. The financial support from Grant PGC2018-096955-B-C41 funded by MCIN/AEI/10.13039/501100011033 is acknowledged (J.J., P.G.-F., F.G.-O.). F.G.-O. acknowledge financial support from Grant No. FPU18/04661 funded by Spanish Ministry of Universities. The phase-field simulation was performed on the MoFang III cluster on Shanghai Supercomputing Center (SSC). S. D. is currently at Materials Research Centre, Indian Institute of Science, Bangalore, India.es_ES
dc.format.extent20 p.es_ES
dc.language.isoenges_ES
dc.publisherWiley-VCH GmbHes_ES
dc.rights© 2022 Wiley-VCH GmbH "This is the peer reviewed version of the following article: Zhou, L., et al. "Order-Disorder Transitions in a Polar Vortex Lattice." Advanced Functional Materials, vol. 32, no. 22, 2022, which has been published in final form at https://doi.org/10.1002/adfm.202111392. This article may be used for non-commercial purposes in accordance with Wiley Terms and Conditions for Self-Archiving."es_ES
dc.sourceAdvanced Functional Materials, 2022, 32(22), 2111392es_ES
dc.titleOrder-disorder transitions in a polar vortex latticees_ES
dc.typeinfo:eu-repo/semantics/articlees_ES
dc.relation.publisherVersionhttps://doi.org/10.1002/adfm.202111392es_ES
dc.rights.accessRightsopenAccesses_ES
dc.identifier.DOI10.1002/adfm.202111392
dc.type.versionacceptedVersiones_ES


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