Abstract
A three-dimensional numerical study was carried out to understand the effects of rotating magnetic field on thermocapillary convection and impurity concentration distribution in a floating full zone growth process of doped Si crystals under zero gravity. Even though the applied temperature profile was axisymmetric, the simulation results showed that the flow structures and concentration distribution in the molten zone exhibited three-dimensional disordered patterns in the absence of a rotating magnetic field. For the application of rotating magnetic field, Lorentz force forced convection to rotate in the same direction of the magnetic field and made the tangential velocity in the melt increase with the growing radial distance. Under a relatively low magnetic field, the thermocapillary flow became an oscillatory three-dimensional convection. However, two dimensional axisymmetric distributions of both the melt flow and the impurity concentration were presented under the magnetic field with sufficiently strong intensity. Meanwhile, the thermocapillary convection in the molten zone formed a back flow region with flow in the direction from the high temperature to low temperature along the free surface and through intermediate section. The concentration contours became uniform, and thus the isolines of concentration formed a series of concentric circles in the growth interface. Therefore, the rotating magnetic field was effective for ameliorating the stability of the melt flow and the uniformity of the concentration distribution which was beneficial to the growth of crystals with a radial uniform crystal.
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