Characterization of Mn-Doped PIN-PMN-PT Single Crystal Grown by Continuous-Feeding Bridgman Method

Mn-doped Pb(In<sub>1/2</sub>Nb<sub>1/2</sub>)O<sub>3</sub>-Pb(Mg<sub>1/3</sub>Nb<sub>2/3</sub>)O<sub>3</sub>-PbTiO<sub>3</sub> (Mn:PIN-PMN-PT) single crystals are attractive piezoelectric materials owing to their hig...

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Main Authors: Kazuhiko Echizenya, Naoki Noda, Hisato Noro
Format: Article
Language:English
Published: MDPI AG 2022-08-01
Series:Crystals
Subjects:
Online Access:https://www.mdpi.com/2073-4352/12/9/1183
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author Kazuhiko Echizenya
Naoki Noda
Hisato Noro
author_facet Kazuhiko Echizenya
Naoki Noda
Hisato Noro
author_sort Kazuhiko Echizenya
collection DOAJ
description Mn-doped Pb(In<sub>1/2</sub>Nb<sub>1/2</sub>)O<sub>3</sub>-Pb(Mg<sub>1/3</sub>Nb<sub>2/3</sub>)O<sub>3</sub>-PbTiO<sub>3</sub> (Mn:PIN-PMN-PT) single crystals are attractive piezoelectric materials owing to their high mechanical quality factor. However, the single crystal boules grown by the conventional Bridgman method show compositional variation along the growth direction. In particular, the Mn content exhibits large variation due to its severe segregation. To improve the compositional uniformity, we applied the continuous-feeding Bridgman method to the growth of a Mn:PIN-PMN-PT single crystal boule. Then, the composition and property distributions of the boule along the growth direction were evaluated. The results showed that excellent composition and property uniformity were carried out over 80mm in boule length. The ranges of the electromechanical coupling coefficient (<i>k</i><sub>33</sub>) and the piezoelectric coefficient (<i>d</i><sub>33</sub>) were 0.931–0.934 and 1352–1517 pC/N, respectively. The ranges of the mechanical quality factor (<i>Q</i>m<sub>31</sub>) and the depolarization field (<i>E</i><sub>d</sub>) were 417–535 and 785–859 V/mm, respectively. The <i>Q</i>m<sub>31</sub> and the <i>E</i><sub>d</sub> values were higher than those of the non-doped PIN-PMN-PT single crystals. The continuous-feeding Bridgman method is therefore an effective technique for improving the uniformity of the Mn content. As a result, the Mn:PIN-PMN-PT single crystal grown by the continuous-feeding Bridgman method possesses excellent property uniformity with characteristics suitable for high power piezoelectric applications.
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spelling doaj.art-693b1fa46a5c44aa8b6b45075e0f45452023-11-23T15:42:44ZengMDPI AGCrystals2073-43522022-08-01129118310.3390/cryst12091183Characterization of Mn-Doped PIN-PMN-PT Single Crystal Grown by Continuous-Feeding Bridgman MethodKazuhiko Echizenya0Naoki Noda1Hisato Noro2JFE Mineral & Alloy Company, Ltd., 1, Niihama-cho, Chuo-ku, Chiba-shi, Chiba 260-0826, JapanJFE Mineral & Alloy Company, Ltd., 1, Niihama-cho, Chuo-ku, Chiba-shi, Chiba 260-0826, JapanJFE Mineral & Alloy Company, Ltd., 1, Niihama-cho, Chuo-ku, Chiba-shi, Chiba 260-0826, JapanMn-doped Pb(In<sub>1/2</sub>Nb<sub>1/2</sub>)O<sub>3</sub>-Pb(Mg<sub>1/3</sub>Nb<sub>2/3</sub>)O<sub>3</sub>-PbTiO<sub>3</sub> (Mn:PIN-PMN-PT) single crystals are attractive piezoelectric materials owing to their high mechanical quality factor. However, the single crystal boules grown by the conventional Bridgman method show compositional variation along the growth direction. In particular, the Mn content exhibits large variation due to its severe segregation. To improve the compositional uniformity, we applied the continuous-feeding Bridgman method to the growth of a Mn:PIN-PMN-PT single crystal boule. Then, the composition and property distributions of the boule along the growth direction were evaluated. The results showed that excellent composition and property uniformity were carried out over 80mm in boule length. The ranges of the electromechanical coupling coefficient (<i>k</i><sub>33</sub>) and the piezoelectric coefficient (<i>d</i><sub>33</sub>) were 0.931–0.934 and 1352–1517 pC/N, respectively. The ranges of the mechanical quality factor (<i>Q</i>m<sub>31</sub>) and the depolarization field (<i>E</i><sub>d</sub>) were 417–535 and 785–859 V/mm, respectively. The <i>Q</i>m<sub>31</sub> and the <i>E</i><sub>d</sub> values were higher than those of the non-doped PIN-PMN-PT single crystals. The continuous-feeding Bridgman method is therefore an effective technique for improving the uniformity of the Mn content. As a result, the Mn:PIN-PMN-PT single crystal grown by the continuous-feeding Bridgman method possesses excellent property uniformity with characteristics suitable for high power piezoelectric applications.https://www.mdpi.com/2073-4352/12/9/1183single crystalPIN-PMN-PTBridgman growthcompositional segregation
spellingShingle Kazuhiko Echizenya
Naoki Noda
Hisato Noro
Characterization of Mn-Doped PIN-PMN-PT Single Crystal Grown by Continuous-Feeding Bridgman Method
Crystals
single crystal
PIN-PMN-PT
Bridgman growth
compositional segregation
title Characterization of Mn-Doped PIN-PMN-PT Single Crystal Grown by Continuous-Feeding Bridgman Method
title_full Characterization of Mn-Doped PIN-PMN-PT Single Crystal Grown by Continuous-Feeding Bridgman Method
title_fullStr Characterization of Mn-Doped PIN-PMN-PT Single Crystal Grown by Continuous-Feeding Bridgman Method
title_full_unstemmed Characterization of Mn-Doped PIN-PMN-PT Single Crystal Grown by Continuous-Feeding Bridgman Method
title_short Characterization of Mn-Doped PIN-PMN-PT Single Crystal Grown by Continuous-Feeding Bridgman Method
title_sort characterization of mn doped pin pmn pt single crystal grown by continuous feeding bridgman method
topic single crystal
PIN-PMN-PT
Bridgman growth
compositional segregation
url https://www.mdpi.com/2073-4352/12/9/1183
work_keys_str_mv AT kazuhikoechizenya characterizationofmndopedpinpmnptsinglecrystalgrownbycontinuousfeedingbridgmanmethod
AT naokinoda characterizationofmndopedpinpmnptsinglecrystalgrownbycontinuousfeedingbridgmanmethod
AT hisatonoro characterizationofmndopedpinpmnptsinglecrystalgrownbycontinuousfeedingbridgmanmethod