Continuous production of BaTiO3 nanoparticles by hydrothermal synthesis

被引:64
作者
Hakuta, Y [1 ]
Ura, H [1 ]
Hayashi, H [1 ]
Arai, K [1 ]
机构
[1] Natl Inst Adv Ind Sci & Technol, Supercrit Fluid Res Ctr, Miyagino Ku, Sendai, Miyagi 9838551, Japan
关键词
D O I
10.1021/ie049424i
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Continuous production of BaTiO3 fine particles was performed by hydrothermal synthesis using a flow reaction system. The effect of reaction temperature on particle size and its distribution was investigated. Aqueous 0.1 M TiO2 sols and 0.12 M Ba(OH)(2) solutions were used as starting materials. The reaction temperature was in the range 300-420 degreesC, and the reaction pressure was constant at 30 MPa. The reaction time was varied from 0.1 to 40 s with a flow rate of 15 or 75 g/min. Characterizations of products were performed by X-ray diffractometry, scanning electron microscopy equipped with energy dispersion X-ray spectrometry, and transmission electron microscopy. The conversion of TiO2 into BaTiO3 was also evaluated. At 300 degreesC, the Ti conversion increased with the reaction time and achieved a 95% yield at 38 s. With the increase in temperature, both the Ti conversion and the crystallinity of BaTi03 became high. With an increase in temperature from 300 to 380 degreesC, the average particle size of BaTi03 decreased from 46 to 36 nm and these particle size distributions became narrow. At 400 and 420 degreesC, the reaction was complete within several seconds and highly tetragonal crystalline BaTiO3 particles around 50 nm in diameter were produced, whereas the particle size distribution was wide ranging from 10 to 150 nm. However, the finer BaTiO3 particles at a size of 32 nm and a narrow size distribution could be produced by increasing the flow rate to 75 g/min even at 400 degreesC. We discuss the mechanism of particle formation and growth and the feasibility of continuous production of BaTiO3 particles.
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收藏
页码:840 / 846
页数:7
相关论文
共 41 条
[31]   Room-temperature synthesis of crystalline barium titanate thin films by high-concentration sol-gel method [J].
Matsuda, H ;
Kobayashi, N ;
Kobayashi, T ;
Miyazawa, K ;
Kuwabara, M .
JOURNAL OF NON-CRYSTALLINE SOLIDS, 2000, 271 (1-2) :162-166
[32]  
NEWWALKER BL, 2001, MAT RES B, V36, P2347
[33]   Hydrothermal synthesis of BaTiO3 on a titanium-loaded polymer support [J].
Oledzka, M ;
Brese, NE ;
Riman, RE .
CHEMISTRY OF MATERIALS, 1999, 11 (07) :1931-1935
[34]   Evidence of a dissolution-precipitation mechanism in hydrothermal synthesis of barium titanate powders [J].
Pinceloup, P ;
Courtois, C ;
Vicens, J ;
Leriche, A ;
Thierry, B .
JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 1999, 19 (6-7) :973-977
[35]  
RAE A, 1998, DIELECTRIC CERAMIC M
[36]   The hydrothermal synthesis of BaTiO3 fine particles from hydroxide-alkoxide precursors [J].
Urek, S ;
Drofenik, M .
JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 1998, 18 (04) :279-286
[37]   Formation of zinc oxide nanoparticles in supercritical water [J].
Viswanathan, R ;
Gupta, RB .
JOURNAL OF SUPERCRITICAL FLUIDS, 2003, 27 (02) :187-193
[38]   CHARACTERIZATION OF BARIUM-TITANATE FINE POWDERS FORMED FROM HYDROTHERMAL CRYSTALLIZATION [J].
VIVEKANANDAN, R ;
KUTTY, TRN .
POWDER TECHNOLOGY, 1989, 57 (03) :181-192
[39]   Low temperature preparation of barium titanate thin films by a novel sol-gel-hydrothermal method [J].
Zeng, JM ;
Lin, CL ;
Li, JH ;
Li, K .
MATERIALS LETTERS, 1999, 38 (02) :112-115
[40]   Microstructures and photoluminescence of barium titanate nanocrystals synthesized by the hydrothermal process [J].
Zhang, MS ;
Yu, J ;
Chu, JH ;
Chen, Q ;
Chen, WC .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2003, 137 (1-3) :78-81