期刊文献+

两步水热法制备超细纳米颗粒钇稳定氧化锆 被引量:6

Preparation of ultra-fine yttria-stabilized zirconia nanoparticles by two-step hydrothermal process
在线阅读 下载PDF
导出
摘要 采用两步水热法制备钇稳定氧化锆(YSZ)的超细纳米颗粒。利用X射线衍射仪、透射电子显微镜研究pH值以及分散剂和阳离子浓度对YSZ粉体的相组成、相结构和晶粒大小的影响。结果表明,两步水热法制得的YSZ粉体具有立方相结构,平均晶粒尺寸约为6nm;pH值越大,越利于立方相的生成,pH为12时,YSZ粉体为纯立方相;无水乙醇作为分散剂,可以有效地减少粉体的团聚;阳离子浓度过高时(2mol/L),不利于立方相生成,在阳离子浓度适当(约0.02~0.05mol/L)的前提下,稍大的阳离子浓度得到的粉体粒径较小,团聚较少,最佳的阳离子浓度为0.05mol/L。 Ultra-fine yttria-stabilized zirconia(YSZ) nanoparticles were prepared by two-step hydrothermal process. The effects of pH value, dispersant and cation concentration on the phase component, phase structure and grain size of YSZ powders were studied by X-ray diffraction and transmission electron microscopy. The results show that YSZ powder prepared by two-step hydrothermal process has cubic phase structure and its average grain size is about 6 nm. YSZ tends to be cubic phase of zirconia as the pH value increasing, and when pH value is 12, pure cubic phase of YSZ can be obtained. Higher cation concentration, 2 mol/L, is hardly to get cubic phase YSZ. Using ethanol as dispersant can effectively reduce agglomeration of YSZ powders. The average size and the aggregation of YSZ powder prepared at different cation concentrations show that the optimal cation concentration is 0.05 mol/L.
出处 《粉末冶金材料科学与工程》 EI 北大核心 2012年第3期395-400,共6页 Materials Science and Engineering of Powder Metallurgy
基金 科技部创新基金资助项目(10C26224302621)
关键词 氧化钇稳定氧化锆 两步水热法 超细纳米颗粒 yttria-stabilized zirconia two-step hydrothermal process ultra-fine nanoparticles
  • 相关文献

参考文献19

  • 1DELL'AGLI G, ESPOSITO S, MASCOLO G, et al. Films by slurry coating of nanometric YSZ (8 mol% 2O3) powders synthesized by low-temperature hydrothermal treatment [J], Journal of the European Ceramic Society, 2005, 25: 2017-2021.
  • 2PITICESCU R, MONTY C, MILLERS D. Hydrothermal synthesis of nanostructured zriconia materials present and future prospects [J]. Sensors and Actuators B, 2005, 109: 102-106.
  • 3任继文,张洪海,刘胜,等.平板式ZrO2汽牛氧传感器的结构、原理及研究进展[J].仪表技术与氧传感器,2007,04:8-13.
  • 4YAMAMOTO O, ARACHI Y, SAKAI H, et al. Zirconia based oxide ion conductors for solid oxide fuel cells [J]. Ionics, 1998, 4: 403-408.
  • 5蒋凯,张秀英,郭崇峰.固体氧化物燃料电池中的电解质[J].稀有金属,2001,25(2):121-125. 被引量:20
  • 6CHEN C C, NASRALLAH M M, ANDERSON H U. Synthesis and characterization of YSZ thin film electrolytes [J]. Solid State lonics, 1994, (70/71): 101-108.
  • 7史可顺.中温固体氧化物燃料电池电解质材料及其制备工艺的研究发展趋势[J].硅酸盐学报,2008,36(11):1676-1688. 被引量:11
  • 8张志琨.纳米材料与纳米技术[M].北京:国防工业出版社,2000..
  • 9CHEN D J, MAYO M J. Rapid rate sintering of nanocrystalline ZRO2-3 mol% Y203 [J]. Journal of the American Ceramic Society, 1996, 79: 906-912.
  • 10ABD-EL-LATIF M M, ELKADY M F. Synthesis, characterization and evaluation of nano-zirconium vanadate ion exchanger by using three different preparation techniques [J]. Materials Research Bulletin, 2011,46:105-118.

二级参考文献65

共引文献60

同被引文献86

引证文献6

二级引证文献23

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部