RADIAL DOPANT SEGREGATION IN ZERO-GRAVITY FLOATING-ZONE CRYSTAL-GROWTH

被引:22
|
作者
LAN, CW [1 ]
KOU, S [1 ]
机构
[1] UNIV WISCONSIN,CTR EXCELLENCE SOLIDIFICAT PROC TECHNOL ENGN,MADISON,WI 53706
基金
美国国家航空航天局;
关键词
D O I
10.1016/0022-0248(93)90085-B
中图分类号
O7 [晶体学];
学科分类号
0702 ; 070205 ; 0703 ; 080501 ;
摘要
A computer model was developed to study radial dopant segregation in floating-zone crystal growth under zero-gravity. Heat transfer, fluid flow and mass transfer in the melt zone were considered simultaneously. The growth front, feed front and free surface were calculated, these interfaces being nonisothermal and having nonuniform dopant concentrations. For a dopant with a segregation ratio k0 < 1, the model showed the following trends. A convex growth front causes the dopant to segregate toward the crystal surface whereas a concave one toward the crystal axis, the former being consistent with the experiment of Levenstam et al. The effect of the growth front shape is quickly overshadowed as thermocapillary convection begins to increase in strength. Thermocapillary convection causes the dopant to segregate toward the crystal axis. However, as thermocapillary convection grows stronger, dopant segregation toward the crystal axis first increases and then decreases due to improved mixing. The direction of dopant segregation is reversed when k0 > 1. Finally, the shape of the growth front can be affected by radial dopant segregation.
引用
收藏
页码:578 / 591
页数:14
相关论文
共 50 条
  • [21] Effect of Rotating Magnetic Field on Thermal Convection and Dopant Transport in Floating-Zone Crystal Growth
    Yong Zou
    Hulin Huang
    Guiping Zhu
    Xiaoming Zhou
    Microgravity Science and Technology, 2020, 32 : 349 - 361
  • [22] Effect of Rotating Magnetic Field on Thermal Convection and Dopant Transport in Floating-Zone Crystal Growth
    Zou, Yong
    Huang, Hulin
    Zhu, Guiping
    Zhou, Xiaoming
    MICROGRAVITY SCIENCE AND TECHNOLOGY, 2020, 32 (03) : 349 - 361
  • [23] SIMULATION OF CRYSTAL-GROWTH IN ZERO GRAVITY
    SHLICHTA, PJ
    ACEVEDO, M
    CORDEN, B
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1972, 17 (12): : 1185 - 1185
  • [24] CRYSTAL-GROWTH AND STEADY-STATE SEGREGATION UNDER ZERO GRAVITY - INSB
    WITT, AF
    GATOS, HC
    LICHTENSTEIGER, M
    LAVINE, MC
    HERMAN, CJ
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1975, 122 (02) : 276 - 283
  • [25] DIRECTIONAL CRYSTAL-GROWTH OF YTTRIA-STABILIZED ZIRCONIA BY THE ARC IMAGE FLOATING-ZONE METHOD
    SAIKI, A
    ISHIZAWA, N
    MIZUTANI, N
    KATO, M
    JOURNAL OF MATERIALS SCIENCE LETTERS, 1987, 6 (05) : 568 - 570
  • [26] HEAT-TRANSFER, FLUID-FLOW AND INTERFACE SHAPES IN FLOATING-ZONE CRYSTAL-GROWTH
    LAN, CW
    KOU, S
    JOURNAL OF CRYSTAL GROWTH, 1991, 108 (1-2) : 351 - 366
  • [27] Modeling of ellipsoid mirror furnace for floating-zone crystal growth
    Lan, CW
    Tsai, CH
    JOURNAL OF CRYSTAL GROWTH, 1997, 173 (3-4) : 561 - 573
  • [28] Floating-zone growth of GaAs
    Croll, A
    Schweizer, M
    Tegetmeier, A
    Benz, KW
    JOURNAL OF CRYSTAL GROWTH, 1996, 166 (1-4) : 239 - 244
  • [29] DOPANT SEGREGATION CONTROL IN CZOCHRALSKI CRYSTAL-GROWTH WITH A WETTED FLOAT
    LIN, MH
    KOU, S
    JOURNAL OF CRYSTAL GROWTH, 1993, 132 (3-4) : 461 - 466
  • [30] Crystal growth of CuFeO2 by the floating-zone method
    Univ of Tokyo, Tokyo, Japan
    J Cryst Growth, 1-2 (189-192):