CONDENSED MATTER: ELECTRONIC STRUCTURE, ELECTRICAL, MAGNETIC, AND OPTICAL PROPERTIES |
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Enhanced ferromagnetism and magnetoelectric response in quenched BiFeO3-based ceramics |
Qi Pan(潘祺), Bao-Jin Chu(初宝进) |
Key Laboratory of Materials for Energy Conversion, Chinese Academy of Sciences(CAS), Department of Materials Science and Engineering, University of Science and Technology of China, Hefei 230026, China |
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Abstract The piezoelectric, ferromagnetism, and magnetoelectric response of BiFeO3-BaTiO3 ceramics with the compositions around the morphotropic phase boundary (MPB) of the solid solution are systematically investigated after the ceramics have been quenched from a high temperature. We find that the ferromagnetism of the quenched ceramics is greatly enhanced. An enhanced piezoelectric response d33 larger than 200 pC/N, which could be sustained up to 350℃, is measured. As a result of enhanced ferromagnetism and piezoelectric response, a large magnetoelectric response ~1.3 V/cm·Oe (1 Oe=79.5775 A·m-1) is obtained near the mechanical resonance frequency of the quenched ceramic samples. Our research also shows that in addition to the ferromagnetism and piezoelectric response, the mechanical quality factor is another important parameter to achieve high magnetoelectric response because the physical effects are coupled through mechanical interaction in BiFeO3-based materials. Our work suggests that quenching is an effective approach to enhancing the magnetoelectric response of BiFeO3-based materials and the materials belong to single-phase multiferroic materials with high magnetoelectric response.
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Received: 28 March 2020
Revised: 24 May 2020
Accepted manuscript online:
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PACS:
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75.85.+t
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(Magnetoelectric effects, multiferroics)
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76.50.+g
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(Ferromagnetic, antiferromagnetic, and ferrimagnetic resonances; spin-wave resonance)
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77.55.H-
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(Piezoelectric and electrostrictive films)
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Fund: Project supported by the National Natural Science Foundation of China (Grant Nos. 51672261 and 51373161) and the National Key Research and Development Program of China (Grant No. 2017YFA0701301). |
Corresponding Authors:
Bao-Jin Chu
E-mail: chubj@ustc.edu.cn
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Cite this article:
Qi Pan(潘祺), Bao-Jin Chu(初宝进) Enhanced ferromagnetism and magnetoelectric response in quenched BiFeO3-based ceramics 2020 Chin. Phys. B 29 087501
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[1] |
Khomskii D I 2006 J. Magn. Magn. Mater. 306 1
|
[2] |
Fiebig M, Lottermoser T, Frohlich D, Goltsev A V and Pisarev R V 2002 Nature 419 818
|
[3] |
Ravez J, Abrahams S C and Pape R D 1989 J. Appl. Phys. 65 3987
|
[4] |
Sarraute S, Ravez J, VonderMuhll R, Bravic G, Feigelson R S and Abrahams S C 1996 Acta. Cryst. B. 52 72
|
[5] |
Ravez J 1997 J. Phys. III France 7 1129
|
[6] |
Cheong S W and Mostovoy M 2007 Nat. Mater. 6 13
|
[7] |
Palai R, Katiyar R S, Schm H, Tissot P, Clark S J, Robertson J, Redfern S A T, Catalan G and Scott J F 2008 Phys. Rev. B 77 014110
|
[8] |
Catalan G and Scott J F 2009 Adv. Mater. 21 2463
|
[9] |
Qi X D, Dho J, Tomov R, Blamire M G and MacManus-Driscoll J L 2005 Appl. Phys. Lett. 86 062903
|
[10] |
Wang J, Neaton J B and Zheng H 2003 Science 299 1719
|
[11] |
Sharma P, Kumar A and Varshney D 2015 Solid State Commun. 220 6
|
[12] |
Kumara M and Yadav K L 2007 Appl. Phys. Lett. 91 242901
|
[13] |
Lee Y H, Wu J M and Lai C H 2006 Appl. Phys. Lett. 88 042903
|
[14] |
Kim J K, Kim S S and Kim W J 2006 Appl. Phys. Lett. 88 132901
|
[15] |
Yan T L, Chen B, Liu G, Niu R P, Shang J, Gao S, Xue W H, Jin J, Yang J R and Li R W 2017 Chin. Phys. B 26 067702
|
[16] |
Itoh N, Shimura T, Sakamoto W and Yogo T 2007 Ferroelectrics 356 19
|
[17] |
Zhang M, Zhang X Y, Qi X W, Li Y, Bao L and GuY H 2017 Ceram. Int. 43 16957
|
[18] |
Behera C and Pattanaik A K 2019 J. Mater. Sci-Mater. El. 089 00140
|
[19] |
Ryua G H, Hussaina A, Leea M H, Malik R A, Songa T K, KimW J and Kim M H 2018 J. Eur. Ceram. Soc. 18 30341
|
[20] |
Du X H, Zheng J H, Belegundu U and Uchino K 1998 Appl. Phys. Lett. 72 2421
|
[21] |
Wei Y X,Wang X T, Zhu J T, Wang X L and Jia J J 2013 J. Am. Ceram. Soc. 96 3163
|
[22] |
Zhen T, Jiang Z G and Wu J G 2016 Dalton Trans. 45 11277
|
[23] |
Lee M H, Kim D J, Park J S, Kim S W, Song T K, Kim M H, Kim W J and Do D 2015 Adv. Mater. 27 6976
|
[24] |
He H, Zhao J T, Luo Z L, Yang Y J, Xu H, Hong B, Wang L X, Wang R X and Gao C 2016 Chin. Phys. Lett. 33 67502
|
[25] |
Zhao K H, Wang Y H, Shi X L, Liu N and Zhang L W 2015 Chin. Phys. Lett. 32 87503
|
[26] |
Rao W, Wang Y B, Wang Y A, Gao J X, Zhou W L and Yu J 2014 Chin. Phys. Lett. 31 017503
|
[27] |
Wang Y A, Wang Y B, Rao W, Gao J X, Zhou W L and Yu J 2013 Chin. Phys. Lett. 30 047502
|
[28] |
Gupta R, Shah J, Chaudhary S and Kotnala R K 2015 J. Alloys Compd. 638 115
|
[29] |
Luo L, Jiang N, Zou X, Shi D, Sun T, Zheng Q, Xu C G, Lam K H and Lin D M 2015 Phys. Status Solidi A 212 2012
|
[30] |
Zhang M, Zhang X Y, Qi X W, Zhu H G, Li Y and Gu Y H 2018 Ceram. Int. 44 21269
|
[31] |
Bichurin M I, Filippov D A and Petrov V M 2003 Phys. Rev. B 68 132408
|
[32] |
Filippov D A, Bichurin M I, Nan C W and Liu J M 2005 J. Appl. Phys. 97 113910
|
[33] |
Jia Y M, Luo H S, Zhao X Y and Wang F F 2008 Adv. Mater. 20 4776
|
[34] |
Pan Q, Fang C, Luo H S and Chu B J 2019 J. Eur. Ceram. Soc. 39 1057
|
[35] |
Pan Q and Chu B J 2019 J. Appl. Phys. 125 154102
|
[36] |
IEEE Standard on Piezoelectricity, ANSI/IEEE Std. 176-1987, IEEE, New York, 1987
|
[37] |
Unruan S, Unruan M, Monnor T, Priya S and Yimnirun R 2015 J. Am. Ceram. Soc. 98 3291
|
[38] |
Kumar M M, Srinivas A and Suryanarayana S V 2000 J. Appl. Phys. 87 855
|
[39] |
Cao L, Zhou C R, Xu J W, Li Q L, Yuan C L and Chen G H 2016 Phys. Status Solidi A 213 52
|
[40] |
Wan Y, Li Y, Li Q, Zhou W, Zheng Q J, Wu X C, Zhu B P and Lin D M 2014 J. Am. Ceram. Soc. 97 1809
|
[41] |
Kumar M M, Srinath S, Kumar G S and Suryanarayana S V 1998 J. Appl. Phys. 188 203
|
[42] |
Wang T H, Ding Y, Tu C S, Yao Y D, Wu K T, Lin T C, Yu H H, Ku C S and Lee H Y 2011 J. Appl. Phys. 109 07D907
|
[43] |
Gotardo R A M, Viana D S F, Olzon-Dionysio M, Souza S D, Garcia D, Eiras J A, Alves M F S, Cotica L F, Santos I A and Coelho A A 2012 J. Appl. Phys. 112 104112
|
[44] |
Fujii T, Jinzenji S and Asahara Y 1988 J. Appl. Phys. 64 5434
|
[45] |
Bai F M, Wang J L, Wuttig M, Li J F, Wang N G, Pyatakov A P, Zvezdin A K, Cross L E and Viehland D 2005 Appl. Phys. Lett. 86 032511
|
[46] |
Ma J, Hu J M, Li Z and Nan C W 2011 Adv. Mater. 23 1062
|
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