Flash sintering of 3YSZ doping with CNT at low temperature

被引:0
|
作者
Yang Y. [1 ]
Zhao P.-L. [1 ]
Ma T.-H. [1 ]
Jia J.-M. [1 ]
机构
[1] School of Materials Science and Engineering, Changchun University of Technology, Changchun
关键词
carbon nanotubes; flash sinter; ionic conductivity; materials science; sintering temperature;
D O I
10.13229/j.cnki.jdxbgxb.20220338
中图分类号
学科分类号
摘要
In the present study,3 mol% Yttria-Stabilized Zirconia(3YSZ)powder was used as the base material doping with conductive phase-carbon nanotubes(CNT)to conduct low-temperature sintering at 200 ℃ ,and simultaneously assisting AC electric field and pressure. The effects of carbon nanotube concentration on the phase composition, microscopic morphology and ionic conductivity of sintered materials were mainly discussed. The results showed that the composites were sintered uniformly and densely at this temperature,and the ionic conductivity was 0.20 μs/cm when the concentration of carbon nanotubes was 2%;When the concentration of carbon nanotubes was 3%,the ionic conductivity 0.83 μs/ cm could be reached;When the concentration of carbon nanotubes was increased to 4%,the ability of the material to withstand electric field strength and current density was further improved,and the initial voltage of flash sintering was reduced,but the conductivity was 0.6 μs/cm at this time,meantime,the material could be sintered at room temperature. © 2024 Editorial Board of Jilin University. All rights reserved.
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页码:394 / 399
页数:5
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共 11 条
  • [1] Guan S H, Liu Z P., Theoretical aspects on doped-zirconia for solid oxide fuel cells: from structure to conductivity[J], Chinese Journal of Chemical Physics, 34, 2, pp. 125-136, (2021)
  • [2] Lv Y M, Xie J T, Wang D B, Et al., Review of cell performance in solid oxide fuel cells, Journal of Materials Science, 55, 17, pp. 7184-7207, (2021)
  • [3] Yang Yue, Li Xue, Xu Xiao-dan, Microstructure and properties of sintered Ti-B-C-N powder, Journal of Jilin University(Engineering and Technology Edition), 47, 2, pp. 552-556, (2017)
  • [4] Cologna M, Rashkova B, Raj R., Flash sintering of nanograin zirconia in <5 s at 850 ℃ [J], Journal of the American Ceramic Society, 93, 11, pp. 3556-3559, (2010)
  • [5] Su Xing-hua, Wu Ya-juan, An Gai, Et al., Advances in mechanisms for flash sintering of ceramic materials, Journal of The Chinese Ceramic Society, 48, 12, pp. 1872-1879, (2020)
  • [6] Liu J M, Li X, Wang X L, Et al., Alternating current field flash sintering 99% relative density ZnO ceramics at room temperature, Scripta Materialia, 176, pp. 28-31, (2020)
  • [7] Xiao W W, Ni N, Fan X H, Et al., Ambient flash sintering of reduced graphene oxide/zirconia composites: role of reduced graphene oxide, Journal of Materials Science & Technology, 60, pp. 70-76, (2021)
  • [8] Muccillo R, Ferlauto A S, Muccillo E N S., Flash sintering samaria-doped ceria–carbon nanotube composites, Ceramics, 2, 1, pp. 64-73, (2019)
  • [9] Du Y, Stevenson A J, Vernat D, Et al., Estimating joule heating and ionic conductivity during flash sintering of 8YSZ, Journal of the European Ceramic Society, 36, 3, pp. 749-759, (2016)
  • [10] Liu Jin-ling, Liu Dian-guang, Wang Yi-guang, Et al., Research progress on the flash sintering mechanism and application of oxide ceramics, Journal of Inorganic Materials, 37, 5, pp. 1-8, (2022)