Silicon from sand is a promising technology for producing silicon of semiconductor quality

Tatiana Kritskaia, M. Sukach, Yevgen Bazhenov
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Abstract

An analysis of the methods for obtaining silicon of semiconductor quality determined the relevance of the issues of compliance of modern technologies with environmental requirements of today, as well as the possibilities of raw materials and energy supply for a potential increase in production volumes. The development of production requires a search for compromises between the needs of society and the consequences expressed in the environmental impact on nature, the growth in the consumption of raw materials and energy. The proposal to use quartz sand instead of quartzite is promising due to the solution of the problems of raw material supply for the production of silicon of semiconductor quality for many years to come. The technology of chlorination of quartz sands proposed for implementation has been tested in industrial conditions and, in addition to the problems of raw material supply, to a large extent solves the problems of environmental and energy supply.Within the framework of the set environmental task, the problems of decarbonization of production are first of all solved by eliminating the energy-consuming high-temperature process of carbothermal reduction of silicon. The proposed technological solution provides a compromise between environmental friendliness and energy efficiency by involving silicon-containing materials, technogenic wastes, as “energy donors” in physical and chemical processes. Chlorination of the prepared raw materials is carried out in the solid phase, which is an energy-efficient solution, as it eliminates the cost of energy to compensate for the latent energy of melting. The initial preparation of raw materials involves the procedure of mechanoactivation - energy-efficient activation of the raw material by destroying intercrystalline bonds. The use of “energy donors” in blending ensures that the chlorination process is carried out in the autothermal mode, reducing the specific consumption of chlorine for the process. The problems of high energy intensity in the production of silicon of semiconductor quality are also solved by adjusting the technological scheme with the exclusion of energy-consuming low-temperature processes.The implementation of the proposed technological solutions is focused on the maximum use of known technological equipment, which minimizes the costs of design and production development of the technology. Based on the practical data obtained, system solutions for integrating the new technology into the schemes of existing enterprises are proposed - providing variability of adaptation in terms of raw material supply and the range of produced polycrystalline silicon of both “electronic” and “solar” quality. Based on the practical data obtained, system solutions were proposed for integrating the new technology into the schemes of existing enterprises - providing variability of adaptation in terms of raw material supply and the range of produced polycrystalline silicon of both “electronic” and “solar” quality.
砂制硅是一种很有前途的生产半导体级硅的技术
通过对获得半导体质量硅的方法的分析,确定了现代技术符合当今环境要求的问题的相关性,以及原材料和能源供应对潜在产量增加的可能性。生产的发展需要在社会的需要和对自然的环境影响所造成的后果、原料和能源消费的增长之间寻求妥协。用石英砂代替石英岩的建议是有希望的,因为解决了未来许多年生产半导体质量硅的原材料供应问题。拟实施的石英砂氯化工艺已在工业条件下进行了试验,除解决原料供应问题外,在很大程度上解决了环境和能源供应问题。在设定的环境任务框架内,首先通过消除耗能的碳热还原硅高温工艺来解决生产中的脱碳问题。拟议的技术解决办法在环境友好性和能源效率之间作出妥协,将含硅材料、技术废料作为物理和化学过程中的“能源供体”。制备的原料的氯化是在固相中进行的,这是一种节能的解决方案,因为它消除了能量成本,以补偿熔化的潜在能量。原料的初始制备涉及机械活化过程-通过破坏晶间键对原料进行节能活化。在混合中使用“能量供体”,确保氯化过程在自热模式下进行,减少了该过程中氯的具体消耗。通过调整工艺方案,排除耗能大的低温工艺,解决了半导体级硅生产中能量强度高的问题。所提出的技术解决方案的实施重点是最大限度地利用已知的技术设备,从而最大限度地减少技术的设计和生产开发成本。根据获得的实际数据,提出了将新技术整合到现有企业方案中的系统解决方案——在原材料供应和生产的“电子”和“太阳能”质量多晶硅的范围方面提供适应性的可变性。根据获得的实际数据,提出了将新技术整合到现有企业方案中的系统解决方案——在原材料供应和生产的“电子”和“太阳能”质量多晶硅的范围方面提供适应性的可变性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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