Effect of LiF addition on the phase transition of sinterable β-spodumene precursor powders prepared by a sol-gel process

被引:0
|
作者
Moo-Chin Wang
Nan-Chung Wu
Sheng Yang
Shaw-Bing Wen
机构
[1] National Kaohsiung University of Applied Sciences,Department of Mechanical Engineering
[2] National Cheng Kung University,Department of Materials Science and Engineering
[3] National Cheng Kung University,Department of Resources Engineering
来源
Journal of Materials Research | 2002年 / 17卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
β-Spodumene (Li2O · Al2O · 4SiO2, LAS4) precursor powders were obtained through a sol-gel process using Si(OC2H5)4, Al(OC4H9)3, and LiNO3 as starting materials and LiF as a sintering aid. X-ray diffraction, scanning electron microscopy, scanning transmission electron microscopy with a wavelength dispersive spectrometer, and electron diffraction analysis were utilized to study the phase transition of the β-spodumene glass–ceramics prepared from the gel-derived precursor powders with LiF additive. For the LAS4 precursor powders containing no LiF, the only crystalline phase obtained was β-spodumene. For the pellets containing less than 4.0 wt% LiF and sintered at 1050 °C for 5 h, the crystalline phases were β-spodumene solid solution and β-eucryptite (Li2O · Al2O3 · 2SiO2, LAS2) solid solution. When the LiF content was 5.0 wt% and the sintering process was carried out at 1050 °C for 5 h, the crystalline phases were β-spodumene solid solution, β-eucryptite solid solution (triclinic), and eucryptite [rhombohedral (hex.)]. When the LiF addition attains 3.0 wt%, the fully densified grains are formed, accompanied with an increase in grain size for LiF addition. At the triple junction of grain boundaries a second phase segregates which is identified to be β-spodumene solid solution. In the sintering period of LAS4 precursor powders with LiF additive, the grains converted to β-eucryptite solid solution and β-spodumene solid solution remains at the grain boundaries.
引用
收藏
页码:1960 / 1968
页数:8
相关论文
共 50 条
  • [41] The effect of precursor chemistry on the crystallisation and densification of sol-gel derived mullite gels and powders
    Cassidy, DJ
    Woolfrey, JL
    Bartlett, JR
    BenNissan, B
    JOURNAL OF SOL-GEL SCIENCE AND TECHNOLOGY, 1997, 10 (01) : 19 - 30
  • [42] Infrared Spectroscopy Studies on Sol-gel Prepared Alumina Powders
    Jafar Tafreshi, Majid
    Masoomi Khanghah, Zeinab
    MATERIALS SCIENCE-MEDZIAGOTYRA, 2015, 21 (01): : 28 - 31
  • [43] LiCoO2 powders prepared by the sol-gel method
    Szatvanyi, A
    Crisan, M
    Crisan, D
    Jitianu, A
    Stanciu, L
    Zaharescu, M
    REVUE ROUMAINE DE CHIMIE, 2002, 47 (12) : 1255 - 1259
  • [44] Hydroxyapatite powders and thin films prepared by a sol-gel technique
    Lopatin, CM
    Pizziconi, V
    Alford, TL
    Laursen, T
    THIN SOLID FILMS, 1998, 326 (1-2) : 227 - 232
  • [45] Barium Zirconium Titanate Powders Prepared by Sol-Gel Method
    Deng, Xiaoling
    Guo, Dongjiao
    Cai, Wei
    Fu, Chunlin
    CHINESE CERAMICS COMMUNICATIONS II, 2012, 412 : 86 - 89
  • [46] PREPARATION OF SPHERICAL POWDERS OF HYDROXYAPATITE BY SOL-GEL PROCESS
    DEPTULA, A
    LADA, W
    OLCZAK, T
    BORELLO, A
    ALVANI, C
    DIBARTOLOMEO, A
    JOURNAL OF NON-CRYSTALLINE SOLIDS, 1992, 147 : 537 - 541
  • [47] SOL-GEL PROCESS FOR THE PREPARATION OF FINE ELECTROCERAMIC POWDERS
    RAVINDRANATHAN, P
    KOMARNENI, S
    CHOI, SC
    BHALLA, AS
    ROY, R
    FERROELECTRICS, 1988, 87 : 133 - 140
  • [48] Effect of HNO3 on crystalline phase evolution in lithium silicate powders prepared by sol-gel processes
    Zhang, Bo
    Easteal, Allan J.
    JOURNAL OF MATERIALS SCIENCE, 2008, 43 (15) : 5139 - 5142
  • [49] SYNTHESIS OF CALCIUM TITANATE POWDERS BY THE SOL-GEL PROCESS
    PFAFF, G
    CHEMISTRY OF MATERIALS, 1994, 6 (01) : 58 - 62
  • [50] Kinetics of anatase transition to rutile TiO2 from titanium dioxide precursor powders synthesized by a sol-gel process
    Wang, Cheng-Li
    Hwang, Weng-Sing
    Chu, Hsueh-Liang
    Lin, Huey-Jiuan
    Ko, Horng-Huey
    Wang, Moo-Chin
    CERAMICS INTERNATIONAL, 2016, 42 (11) : 13136 - 13143