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System of mathematical models for the analysis of industrial FZ-Si-crystal growth processes

机译:用于分析工业FZ-Si晶体生长过程的数学模型系统

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摘要

A system of coupled mathematical models and the corresponding program package is developed to study the interface shape, heat transfer, thermal stresses, fluid flow as well as the transient dopant segregation in the floating zone (FZ) growth of large silicon crystals (diameter greater than or equal 100 mm) grown by the needle-eye technique. The floating zone method with needle-eye technique is used to produce high-purity silicon single crystals for semiconductor devices to overcome the problems resulting from the use of crucibles. The high frequency electric current induced by the pancake induction coil, the temperature gradients and the feed/crystal rotation determine the free surface shape of the molten zone and cause the fluid motion. The quality of the growing crystal depends on the shape of the growth interface, the temperature gradients and corresponding thermal stresses in the single crystal, the fluid flow, and especially on the dopant segregation near the growth interface. From the calculated transient dopant concentration fields in the molten zone the macroscopic and microscopic resistivity distribution in the single crystal is derived. The numerical results of the resistivity distributions are compared with the resistivity distributions measured in the grown crystal.
机译:开发了一个耦合数学模型和相应程序包的系统,以研究大硅晶体(直径大于或等于100毫米)通过针眼技术生长。使用针眼技术的浮区法来生产用于半导体器件的高纯度硅单晶,以克服由于使用坩埚而引起的问题。薄煎饼感应线圈感应的高频电流,温度梯度和进料/晶体旋转决定了熔融区的自由表面形状,并引起流体运动。生长晶体的质量取决于生长界面的形状,单晶中的温度梯度和相应的热应力,流体流动,尤其取决于生长界面附近的掺杂剂偏析。从计算出的熔融区瞬态掺杂剂浓度场,可以得出单晶的宏观和微观电阻率分布。将电阻率分布的数值结果与在生长的晶体中测得的电阻率分布进行比较。

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