Self-propagating high-temperature synthesis of barium titanate and subsequent densification by spark plasma sintering (SPS)

被引:36
|
作者
Licheri, Roberta
Fadda, Sarah
Orru, Roberto
Cao, Giacomo
Buscaglia, V.
机构
[1] Univ Cagliari, Dipartimento Ingn Chim & Mat, CESRA, Unita Ric Consorzio,INSTM, I-09123 Cagliari, Italy
[2] Cittadella Univ Monserrato, Dipartimento Fis, PROMEA Scarl, I-09042 Monserrato, CA, Italy
[3] CNR, Ist Energet & Interfasi, I-16149 Genoa, Italy
关键词
SHS; SPS sintering; grain size; dielectric properties; BaTiO3 and titanates;
D O I
10.1016/j.jeurceramsoc.2006.08.004
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This paper describes the self-propagating high-temperature synthesis (SHS) of perovskitic oxides, specifically BaTiO3, and their subsequent densification by spark plasma sintering. With the final goal of obtaining dense nanostructured materials, SHS products were mechanically treated at different milling time conditions, before densification. It was found that the grain size of ball milled powders decreases with increasing milling time, this effect being more evident at early stages of milling. Depending upon the ball milling (BM) conditions adopted, crystallite size in the range 15-70 nm was obtained. After milling for 5 h, the resulting powders (20-30 nm) were sintered by SPS, at 700 A, for different periods of time. By properly varying sintering time in the interval 70-140 s, it is possible to obtain products with relative density in the range 66-99%, respectively. In particular, grain growth during sintering was found to be limited (below 50 nm) if the electric current is applied for time intervals equal to or less than 100 s. The observed dielectric properties are typical of a nanocrystalline BaTiO3 ceramic. (c) 2006 Elsevier Ltd. All rights reserved.
引用
收藏
页码:2245 / 2253
页数:9
相关论文
共 50 条
  • [41] Self-propagating high-temperature synthesis in mechanoactivated compositions
    Korchagin M.A.
    Lyakhov N.Z.
    Russian Journal of Physical Chemistry B, Focus on Physics, 2008, 2 (1) : 77 - 82
  • [42] THE SELF-PROPAGATING HIGH-TEMPERATURE SYNTHESIS OF ALKALI CUPRATES
    KUZNETSOV, MV
    MOROZOV, YG
    NERSESYAN, MD
    INORGANIC MATERIALS, 1995, 31 (02) : 221 - 223
  • [43] Some aspects in self-propagating high-temperature synthesis
    Mossino, P
    CERAMICS INTERNATIONAL, 2004, 30 (03) : 311 - 332
  • [44] Composites fabricated by self-propagating high-temperature synthesis
    Fu, ZY
    Wang, H
    Wang, WM
    Yuan, RZ
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2003, 137 (1-3) : 30 - 34
  • [45] Equilibrium of products of self-propagating high-temperature synthesis
    Merzhanov, AG
    Kovalev, DY
    Shkiro, VM
    Ponomarev, VI
    DOKLADY PHYSICAL CHEMISTRY, 2004, 394 (4-6) : 34 - 38
  • [46] Preparation of ZrC by self-propagating high-temperature synthesis
    Li, Jing
    Fu, Zhengyi
    Wang, Weimin
    Wang, Hao
    Lee, Soowohn
    Niihara, Kochi
    Kuei Suan Jen Hsueh Pao/Journal of the Chinese Ceramic Society, 2010, 38 (05): : 979 - 985
  • [47] Self-propagating high-temperature synthesis of alkali ferrites
    Kuznetsov, MV
    Morozov, YG
    Nersesyan, MD
    INORGANIC MATERIALS, 1997, 33 (10) : 1058 - 1060
  • [48] Self-propagating high-temperature synthesis of ferrosilicon nitride
    Ziatdinov M.Kh.
    Shatokhin I.M.
    Steel Transl., 2008, 1 (39-44): : 39 - 44
  • [49] Self-propagating high-temperature synthesis of metal phosphides
    Institute of Materials Science, National Academy of Sciences of Ukraine, Kiev, Ukraine
    Russ. J. Appl. Chem., 12 (1755-1763):
  • [50] Self-propagating high-temperature synthesis in mechanoactivated compositions
    Korchagin, M. A.
    Lyakhov, N. Z.
    RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY B, 2008, 2 (01) : 77 - 82