Modeling the grain growth kinetics of doped nearly fully dense nanocrystalline ceramics

被引:10
|
作者
Gong, M. M. [1 ,2 ]
Chang, C. H. [2 ]
Wu, L. J. [2 ]
Dey, S. [2 ]
Castro, R. H. R. [2 ]
Liu, F. [1 ]
机构
[1] Northwestern Polytech Univ, State Key Lab Solidificat Proc, Xian 710072, Shaanxi, Peoples R China
[2] Univ Calif Davis, Dept Mat Sci & Engn, Davis, CA 95616 USA
基金
美国国家科学基金会;
关键词
Grain growth; Dopant; Segregation; YSZ; SOLUTE SEGREGATION; SINTERING KINETICS; BOUNDARY MOBILITY; DENSIFICATION; DIFFUSION; TOUGHNESS; ENERGIES; COATINGS; BEHAVIOR; SOLIDS;
D O I
10.1016/j.ceramint.2017.02.062
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
A grain growth model to describe dopant effects on nanocrystalline ceramics is proposed by incorporating the dopant-segregation-dependent grain boundary (GB) energy and the GB mobility subjected to intrinsic drag and pore drag (both affected by dopant segregation) into the parabolic growth formula. The model addresses the common case of residual porosity in grain growth behavior. Taking near-fully dense nanocrystalline lanthanum doped Yttria stabilized Zirconia (La doped YSZ) as the system of study, the grain growth behavior was explored using the model. The substantially suppressed grain growth in La doped YSZ as compared to La-free YSZ could be attributed to the combined effect of thermodynamically reduced GB energy and kinetically reduced GB mobility. Contrary to previous assumptions, the model suggests that, relative to the GB energy overall effect, the effect of the dopant on the GB mobility plays a more significant role in reducing coarsening. Furthermore, model calculation shows that both intrinsic drag and pore drag makes certain contribution to the evolution of GB mobility during the grain growth.
引用
收藏
页码:6677 / 6683
页数:7
相关论文
共 50 条
  • [21] The complex evaluation of functional properties of nearly dense BCZT ceramics and their dependence on the grain size
    Bijalwan, Vijay
    Tofel, Pavel
    Erhart, Jiri
    Maca, Karel
    CERAMICS INTERNATIONAL, 2019, 45 (01) : 317 - 326
  • [22] Correlation of thermodynamics and grain growth kinetics in nanocrystalline metals
    Song, Xiaoyan
    Zhang, Jiuxing
    Li, Lingmei
    Yang, Keyong
    Liu, Guoquan
    ACTA MATERIALIA, 2006, 54 (20) : 5541 - 5550
  • [23] Linear grain growth kinetics and rotation in nanocrystalline Ni
    Farkas, Diana
    Mohanty, Som
    Monk, Joshua
    PHYSICAL REVIEW LETTERS, 2007, 98 (16)
  • [24] Grain growth kinetics of a mechanically milled nanocrystalline Al
    Zhou, F
    Lee, J
    Lavernia, EJ
    SCRIPTA MATERIALIA, 2001, 44 (8-9) : 2013 - 2017
  • [25] Grain growth inhibition in nanocrystalline alumina doped with chromia
    Manor, E
    NANOSTRUCTURED MATERIALS, 1997, 8 (03): : 359 - 366
  • [26] Fast densification of nanocrystalline yttria ceramics without grain growth
    Li B.
    Zheng X.
    Fu Z.F.
    International Journal of Self-Propagating High-Temperature Synthesis, 2015, 24 (1) : 14 - 20
  • [27] Densification and grain growth of nanocrystalline zirconia-based ceramics
    Scipione, G
    Betz, U
    Hahn, H
    MECHANICALLY ALLOYED, METASTABLE AND NANOCRYSTALLINE MATERIALS, PART 1, 1998, 269-2 : 207 - 212
  • [28] Influence of Lattice Defects on the Grain Growth Kinetics of Nanocrystalline Fluorite
    Mahmoud Abdellatief
    Andrea Lausi
    Jasper R. Plaisier
    Paolo Scardi
    Metallurgical and Materials Transactions A, 2014, 45 : 123 - 128
  • [29] Microstructure evolution and grain growth kinetics in annealed nanocrystalline chromium
    Chojnowski, Grzegorz
    Przenioslo, Radoslaw
    Sosnowska, Izabela
    Bukowski, Mirko
    Natter, Harald
    Hempelmann, Rolf
    JOURNAL OF PHYSICAL CHEMISTRY C, 2007, 111 (15): : 5599 - 5604
  • [30] Thermodynamics versus kinetics of grain growth control in nanocrystalline zirconia
    Nafsin, Nazia
    Aguiar, Jeffery A.
    Aoki, Toshihiro
    Thron, Andrew M.
    van Benthem, Klaus
    Castro, Ricardo H. R.
    ACTA MATERIALIA, 2017, 136 : 224 - 234