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Improved epitaxial growth and multiferroic properties of Bi(3)Fe(2)Mn(2)O(x) using CeO(2) re-seeding layers

In ferroelectric and multiferroic-based devices, it is often necessary to grow thicker films for enhanced properties. For certain phases that rely on substrate strain for growth, such thicker film growths beyond the typical thin film regime could be challenging. As an example, the Bi(3)Fe(2)Mn(2)O(x...

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Autores principales: Barnard, James P., Shen, Jianan, Zhang, Yizhi, Lu, Juanjuan, Song, Jiawei, Siddiqui, Aleem, Sarma, Raktim, Wang, Haiyan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10597562/
https://www.ncbi.nlm.nih.gov/pubmed/37881699
http://dx.doi.org/10.1039/d3na00512g
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author Barnard, James P.
Shen, Jianan
Zhang, Yizhi
Lu, Juanjuan
Song, Jiawei
Siddiqui, Aleem
Sarma, Raktim
Wang, Haiyan
author_facet Barnard, James P.
Shen, Jianan
Zhang, Yizhi
Lu, Juanjuan
Song, Jiawei
Siddiqui, Aleem
Sarma, Raktim
Wang, Haiyan
author_sort Barnard, James P.
collection PubMed
description In ferroelectric and multiferroic-based devices, it is often necessary to grow thicker films for enhanced properties. For certain phases that rely on substrate strain for growth, such thicker film growths beyond the typical thin film regime could be challenging. As an example, the Bi(3)Fe(2)Mn(2)O(x) (BFMO) Aurivillius supercell (SC) phase possesses highly desirable multiferroic (i.e., ferromagnetic and ferroelectric) properties and a unique layered structure but relies heavily on substrate strain. Beyond the thin film regime (approximately 100 nm), a less desirable pseudo-cubic (PC) phase is formed. In this work, a novel heterogeneous re-seeding method is applied to maintain the strained growth in this SC phase beyond the thin film regime, thus enabling the growth of thick BFMO SC phase films. The insertion of periodic CeO(2) interlayers reintroduces the heteroepitaxial strain and effectively re-initiates the growth of the SC phase. The thick BFMO SC phase maintains the overall multiferroic and interesting anisotropic optical properties, even exceeding those of the typical 100 nm SC film. This re-seeding method can be effectively adopted with other SC systems or strain-dependent thin films, thus introducing practical applications of the new SC phases without thickness limitations.
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spelling pubmed-105975622023-10-25 Improved epitaxial growth and multiferroic properties of Bi(3)Fe(2)Mn(2)O(x) using CeO(2) re-seeding layers Barnard, James P. Shen, Jianan Zhang, Yizhi Lu, Juanjuan Song, Jiawei Siddiqui, Aleem Sarma, Raktim Wang, Haiyan Nanoscale Adv Chemistry In ferroelectric and multiferroic-based devices, it is often necessary to grow thicker films for enhanced properties. For certain phases that rely on substrate strain for growth, such thicker film growths beyond the typical thin film regime could be challenging. As an example, the Bi(3)Fe(2)Mn(2)O(x) (BFMO) Aurivillius supercell (SC) phase possesses highly desirable multiferroic (i.e., ferromagnetic and ferroelectric) properties and a unique layered structure but relies heavily on substrate strain. Beyond the thin film regime (approximately 100 nm), a less desirable pseudo-cubic (PC) phase is formed. In this work, a novel heterogeneous re-seeding method is applied to maintain the strained growth in this SC phase beyond the thin film regime, thus enabling the growth of thick BFMO SC phase films. The insertion of periodic CeO(2) interlayers reintroduces the heteroepitaxial strain and effectively re-initiates the growth of the SC phase. The thick BFMO SC phase maintains the overall multiferroic and interesting anisotropic optical properties, even exceeding those of the typical 100 nm SC film. This re-seeding method can be effectively adopted with other SC systems or strain-dependent thin films, thus introducing practical applications of the new SC phases without thickness limitations. RSC 2023-10-02 /pmc/articles/PMC10597562/ /pubmed/37881699 http://dx.doi.org/10.1039/d3na00512g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Barnard, James P.
Shen, Jianan
Zhang, Yizhi
Lu, Juanjuan
Song, Jiawei
Siddiqui, Aleem
Sarma, Raktim
Wang, Haiyan
Improved epitaxial growth and multiferroic properties of Bi(3)Fe(2)Mn(2)O(x) using CeO(2) re-seeding layers
title Improved epitaxial growth and multiferroic properties of Bi(3)Fe(2)Mn(2)O(x) using CeO(2) re-seeding layers
title_full Improved epitaxial growth and multiferroic properties of Bi(3)Fe(2)Mn(2)O(x) using CeO(2) re-seeding layers
title_fullStr Improved epitaxial growth and multiferroic properties of Bi(3)Fe(2)Mn(2)O(x) using CeO(2) re-seeding layers
title_full_unstemmed Improved epitaxial growth and multiferroic properties of Bi(3)Fe(2)Mn(2)O(x) using CeO(2) re-seeding layers
title_short Improved epitaxial growth and multiferroic properties of Bi(3)Fe(2)Mn(2)O(x) using CeO(2) re-seeding layers
title_sort improved epitaxial growth and multiferroic properties of bi(3)fe(2)mn(2)o(x) using ceo(2) re-seeding layers
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10597562/
https://www.ncbi.nlm.nih.gov/pubmed/37881699
http://dx.doi.org/10.1039/d3na00512g
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