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Bi deficiency-tuned functionality in multiferroic Bi(1-δ)Fe(0.95)Mn(0.05)O(3) films

Structural evolution and ferroelectric (FE)-to-antiferroelectric (AFE) transition behaviors were observed in Bi(1-δ)Fe(0.95)Mn(0.05)O(3) (100)-textured films with a carefully controlled Bi deficiency concentration δ. Raman spectra revealed an orthorhombic structural transition induced by Mn substitu...

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Autores principales: Chen, Jingyi, Wang, Yao, Wang, Hui, Zhang, Shuangmei, Deng, Yuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4726044/
https://www.ncbi.nlm.nih.gov/pubmed/26775621
http://dx.doi.org/10.1038/srep19385
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author Chen, Jingyi
Wang, Yao
Wang, Hui
Zhang, Shuangmei
Deng, Yuan
author_facet Chen, Jingyi
Wang, Yao
Wang, Hui
Zhang, Shuangmei
Deng, Yuan
author_sort Chen, Jingyi
collection PubMed
description Structural evolution and ferroelectric (FE)-to-antiferroelectric (AFE) transition behaviors were observed in Bi(1-δ)Fe(0.95)Mn(0.05)O(3) (100)-textured films with a carefully controlled Bi deficiency concentration δ. Raman spectra revealed an orthorhombic structural transition induced by Mn substitution. The polarization-electric field hysteresis loops and capacitance-voltage loops of Bi(1-δ)Fe(0.95)Mn(0.05)O(3) films clearly demonstrated antiferroelectric behavior with increasing δ. The responses of the domain structure of the Bi(1-δ)Fe(0.95)Mn(0.05)O(3) film under positive and negative applied voltages directly suggested the coexistence of FE and AFE phases. The existence of (100) superstructure reflections and antiparallel displacements of the Bi atoms along the [100] direction observed by transmission electron microscopy unambiguously reveal the AFE phase. The chemical substitution-induced orthorhombic structural transition in BiFe(0.95)Mn(0.05)O(3) film implies that as the δ concentration increases, the changes in Bi-O bonding and the stereochemical activity of Bi 6s lone pair affect both the ferroelectric distortion and the antiferrodistortive rotation and therefore drive the Bi(1-δ)Fe(0.95)Mn(0.05)O(3) crystal lattice to form a PbZrO(3)-type orthorhombic phase with an AFE order. A continuing increase in Bi deficiency creates defect dipole complexes which produce an internal field leading to a preferred direction of the ferroelectric domain. The Bi deficiency in multiferroic BiFeO(3) provides a new route by which to tune functionality.
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spelling pubmed-47260442016-01-28 Bi deficiency-tuned functionality in multiferroic Bi(1-δ)Fe(0.95)Mn(0.05)O(3) films Chen, Jingyi Wang, Yao Wang, Hui Zhang, Shuangmei Deng, Yuan Sci Rep Article Structural evolution and ferroelectric (FE)-to-antiferroelectric (AFE) transition behaviors were observed in Bi(1-δ)Fe(0.95)Mn(0.05)O(3) (100)-textured films with a carefully controlled Bi deficiency concentration δ. Raman spectra revealed an orthorhombic structural transition induced by Mn substitution. The polarization-electric field hysteresis loops and capacitance-voltage loops of Bi(1-δ)Fe(0.95)Mn(0.05)O(3) films clearly demonstrated antiferroelectric behavior with increasing δ. The responses of the domain structure of the Bi(1-δ)Fe(0.95)Mn(0.05)O(3) film under positive and negative applied voltages directly suggested the coexistence of FE and AFE phases. The existence of (100) superstructure reflections and antiparallel displacements of the Bi atoms along the [100] direction observed by transmission electron microscopy unambiguously reveal the AFE phase. The chemical substitution-induced orthorhombic structural transition in BiFe(0.95)Mn(0.05)O(3) film implies that as the δ concentration increases, the changes in Bi-O bonding and the stereochemical activity of Bi 6s lone pair affect both the ferroelectric distortion and the antiferrodistortive rotation and therefore drive the Bi(1-δ)Fe(0.95)Mn(0.05)O(3) crystal lattice to form a PbZrO(3)-type orthorhombic phase with an AFE order. A continuing increase in Bi deficiency creates defect dipole complexes which produce an internal field leading to a preferred direction of the ferroelectric domain. The Bi deficiency in multiferroic BiFeO(3) provides a new route by which to tune functionality. Nature Publishing Group 2016-01-18 /pmc/articles/PMC4726044/ /pubmed/26775621 http://dx.doi.org/10.1038/srep19385 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Chen, Jingyi
Wang, Yao
Wang, Hui
Zhang, Shuangmei
Deng, Yuan
Bi deficiency-tuned functionality in multiferroic Bi(1-δ)Fe(0.95)Mn(0.05)O(3) films
title Bi deficiency-tuned functionality in multiferroic Bi(1-δ)Fe(0.95)Mn(0.05)O(3) films
title_full Bi deficiency-tuned functionality in multiferroic Bi(1-δ)Fe(0.95)Mn(0.05)O(3) films
title_fullStr Bi deficiency-tuned functionality in multiferroic Bi(1-δ)Fe(0.95)Mn(0.05)O(3) films
title_full_unstemmed Bi deficiency-tuned functionality in multiferroic Bi(1-δ)Fe(0.95)Mn(0.05)O(3) films
title_short Bi deficiency-tuned functionality in multiferroic Bi(1-δ)Fe(0.95)Mn(0.05)O(3) films
title_sort bi deficiency-tuned functionality in multiferroic bi(1-δ)fe(0.95)mn(0.05)o(3) films
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4726044/
https://www.ncbi.nlm.nih.gov/pubmed/26775621
http://dx.doi.org/10.1038/srep19385
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