Suppression of mixed-phase areas in highly elongated BiFeO3 thin films on NdAlO3 substrates

Mixed-phase areas are produced in highly elongated BiFeO3 (BFO) thin films as a consequence of strain relaxation. A (001) neodymium aluminate (NdAlO3; NAO) substrate (a∼3.747 Å) prominently suppresses the strain relaxation effect and prevents the formation of mixed-phase regions. This creates a path...

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Main Authors: Woo, Chang-Su, Lee, Jin Hong, Chu, Kanghyun, Jang, Byung-Kweon, Kim, Yong-Bae, Koo, Tae Yeong, Yang, Ping, Qi, Yajun, Chen, Zuhuang, Chen, Lang, Choi, Hong Chul, Shim, Ji Hoon, Yang, Chan-Ho
Other Authors: School of Materials Science & Engineering
Format: Article
Language:English
Published: 2013
Online Access:https://hdl.handle.net/10356/95575
http://hdl.handle.net/10220/9361
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-955752023-07-14T15:53:45Z Suppression of mixed-phase areas in highly elongated BiFeO3 thin films on NdAlO3 substrates Woo, Chang-Su Lee, Jin Hong Chu, Kanghyun Jang, Byung-Kweon Kim, Yong-Bae Koo, Tae Yeong Yang, Ping Qi, Yajun Chen, Zuhuang Chen, Lang Choi, Hong Chul Shim, Ji Hoon Yang, Chan-Ho School of Materials Science & Engineering Mixed-phase areas are produced in highly elongated BiFeO3 (BFO) thin films as a consequence of strain relaxation. A (001) neodymium aluminate (NdAlO3; NAO) substrate (a∼3.747 Å) prominently suppresses the strain relaxation effect and prevents the formation of mixed-phase regions. This creates a pathway to the thick, quasipure, highly elongated phases required for magnetoelectric applications. We characterize the crystal structure, the interface between film and substrate, the surface morphology, and the ferroelectric domain structure of BFO films on NAO substrates and compare them with those of films on typical lanthanum aluminate substrates. The underlying mechanisms are discussed based on the intriguing nature of phase competition in bismuth ferrite phases using first principles density functional calculations for the misfit strain-dependent total energy. Published version 2013-03-07T08:18:58Z 2019-12-06T19:17:42Z 2013-03-07T08:18:58Z 2019-12-06T19:17:42Z 2012 2012 Journal Article Woo, C.- S., Lee, J. H., Chu, K., Jang, B.- K., Kim, Y.- B., Koo, T. Y., et al. (2012). Suppression of mixed-phase areas in highly elongated BiFeO3 thin films on NdAlO3 substrates. Physical Review B, 86(5), 054417-. https://hdl.handle.net/10356/95575 http://hdl.handle.net/10220/9361 10.1103/PhysRevB.86.054417 en Physical review B © 2012 American Physical Society. This paper was published in Physical Review B and is made available as an electronic reprint (preprint) with permission of American Physical Society. The paper can be found at the following official DOI: [http://dx.doi.org/10.1103/PhysRevB.86.054417]. One print or electronic copy may be made for personal use only. Systematic or multiple reproduction, distribution to multiple locations via electronic or other means, duplication of any material in this paper for a fee or for commercial purposes, or modification of the content of the paper is prohibited and is subject to penalties under law. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
description Mixed-phase areas are produced in highly elongated BiFeO3 (BFO) thin films as a consequence of strain relaxation. A (001) neodymium aluminate (NdAlO3; NAO) substrate (a∼3.747 Å) prominently suppresses the strain relaxation effect and prevents the formation of mixed-phase regions. This creates a pathway to the thick, quasipure, highly elongated phases required for magnetoelectric applications. We characterize the crystal structure, the interface between film and substrate, the surface morphology, and the ferroelectric domain structure of BFO films on NAO substrates and compare them with those of films on typical lanthanum aluminate substrates. The underlying mechanisms are discussed based on the intriguing nature of phase competition in bismuth ferrite phases using first principles density functional calculations for the misfit strain-dependent total energy.
author2 School of Materials Science & Engineering
author_facet School of Materials Science & Engineering
Woo, Chang-Su
Lee, Jin Hong
Chu, Kanghyun
Jang, Byung-Kweon
Kim, Yong-Bae
Koo, Tae Yeong
Yang, Ping
Qi, Yajun
Chen, Zuhuang
Chen, Lang
Choi, Hong Chul
Shim, Ji Hoon
Yang, Chan-Ho
format Article
author Woo, Chang-Su
Lee, Jin Hong
Chu, Kanghyun
Jang, Byung-Kweon
Kim, Yong-Bae
Koo, Tae Yeong
Yang, Ping
Qi, Yajun
Chen, Zuhuang
Chen, Lang
Choi, Hong Chul
Shim, Ji Hoon
Yang, Chan-Ho
spellingShingle Woo, Chang-Su
Lee, Jin Hong
Chu, Kanghyun
Jang, Byung-Kweon
Kim, Yong-Bae
Koo, Tae Yeong
Yang, Ping
Qi, Yajun
Chen, Zuhuang
Chen, Lang
Choi, Hong Chul
Shim, Ji Hoon
Yang, Chan-Ho
Suppression of mixed-phase areas in highly elongated BiFeO3 thin films on NdAlO3 substrates
author_sort Woo, Chang-Su
title Suppression of mixed-phase areas in highly elongated BiFeO3 thin films on NdAlO3 substrates
title_short Suppression of mixed-phase areas in highly elongated BiFeO3 thin films on NdAlO3 substrates
title_full Suppression of mixed-phase areas in highly elongated BiFeO3 thin films on NdAlO3 substrates
title_fullStr Suppression of mixed-phase areas in highly elongated BiFeO3 thin films on NdAlO3 substrates
title_full_unstemmed Suppression of mixed-phase areas in highly elongated BiFeO3 thin films on NdAlO3 substrates
title_sort suppression of mixed-phase areas in highly elongated bifeo3 thin films on ndalo3 substrates
publishDate 2013
url https://hdl.handle.net/10356/95575
http://hdl.handle.net/10220/9361
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