Grain boundary faceting transition and abnormal grain growth in oxides

被引:0
|
作者
Park, CW [1 ]
Yoon, DY [1 ]
机构
[1] Korea Adv Inst Sci & Technol, Dept Mat Sci & Engn, Yusong Gu, Taejon 305701, South Korea
来源
GRAIN BOUNDARY ENGINEERING IN CERAMICS - FROM GRAIN BOUNDARY PHENOMENA TO GRAIN BOUNDARY QUANTUM STRUCTURES | 2000年 / 118卷
关键词
D O I
暂无
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
Grain boundaries in metals and oxides are faceted at low temperatures and become defaceted above certain critical temperatures. The defaceted grain boundaries are expected to have an atomically rough structure and hence nearly isotropic properties. The grain boundary faceting and defaceting can be also induced by additives. When all or some of the grain boundaries are faceted in polycrystals, abnormal grain growth (AGG) occurs, and when all grain boundaries are defaceted, normal grain growth (NGG) occurs. In alumina, for example, all grain boundaries in a specimen prepared from a high purity powder and sintered at either 1620 degreesC or 1900 degreesC are defaceted with smoothly curved shapes, and the grains grow normally. When sintered at 1620 degreesC after adding 100 PPM Of SiO2 and 50 ppm of CaO, some grain boundaries become faceted and AGG occurs. When 600 ppm of MgO is added to this specimen, all grain boundaries become defaceted again and NGG occurs. Similar effects of SiO2 and MgO addition are observed when sintered at 1900 degreesC. In all of these specimens no liquid phase is found at the triple junctions under TEM. Such a correlation between the grain boundary faceting and AGG is found in a number of metals and some oxides. When the grain boundaries are faceted, some of the facet planes have ordered structures and may migrate by the movement of steps existing on such defects as dislocations or twins, or produced by two dimensional nucleation. The effective mobility of the larger grains will then be larger than that of the smaller grains, causing AGG.
引用
收藏
页码:127 / 135
页数:9
相关论文
共 50 条
  • [31] Grain-boundary faceting at a Σ=3, [110]/{112} grain boundary in a cubic zirconia bicrystal
    Shibata, N
    Oba, F
    Yamamoto, T
    Sakuma, T
    Ikuhara, Y
    PHILOSOPHICAL MAGAZINE, 2003, 83 (19): : 2221 - 2246
  • [32] Faceting of a moving grain boundary and its effect on the kinetic properties of grain boundaries
    Sursaeva V.G.
    Prokofiev S.I.
    Sursaeva, V.G. (sursaeva@issp.ac.ru), 1600, Allerton Press Incorporation (81): : 1370 - 1373
  • [34] Anisotropy of grain boundary energies as cause of abnormal grain growth in electroplated copper films
    Paik, JM
    Park, YJ
    Yoon, MS
    Lee, JH
    Joo, YC
    SCRIPTA MATERIALIA, 2003, 48 (06) : 683 - 688
  • [35] GRAIN BOUNDARY FACETING OF [1010] TILT BOUNDARIES IN ZINC
    HARTT, WH
    BISHOP, GH
    BRUGGEMA.G
    JOURNAL OF METALS, 1968, 20 (08): : A71 - &
  • [36] Review: grain boundary faceting-roughening phenomena
    Straumal, B. B.
    Kogtenkova, O. A.
    Gornakova, A. S.
    Sursaeva, V. G.
    Baretzky, B.
    JOURNAL OF MATERIALS SCIENCE, 2016, 51 (01) : 382 - 404
  • [37] The role of diffusion and faceting in surface and grain boundary wetting
    Chatain, D
    Ghetta, V
    Bernardini, J
    Rabkin, E
    DIFFUSIONS IN MATERIALS: DIMAT2000, PTS 1 & 2, 2001, 194-1 : 1307 - 1317
  • [38] Effect of faceting on twin grain boundary motion in zinc
    Sursaeva, Vera G.
    MATERIALS LETTERS, 2010, 64 (02) : 105 - 107
  • [39] High-temperature resistance anomaly at a strontium titanate grain boundary and its correlation with the grain-boundary faceting-defaceting transition
    Lee, Sung Bo
    Lee, Jong-Heun
    Cho, Pyeong-Seok
    Kim, Doh-Yeon
    Sigle, Wilfried
    Phillipp, Fritz
    ADVANCED MATERIALS, 2007, 19 (03) : 391 - +
  • [40] Faceting, Grain Growth, and Crack Healing in Alumina
    Rajak, Pankaj
    Kalia, Rajiv K.
    Nakano, Aiichiro
    Vashishta, Priya
    ACS NANO, 2018, 12 (09) : 9005 - 9010