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Recycling and reuse of kerf-loss silicon from diamond wire sawing for photovoltaic industry

机译:金刚石线锯中的切缝损耗硅的回收和再利用,用于光伏行业

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With the rapid growth of the global photovoltaic (PV) industry, the waste from PV industry cannot be ignored, especially the solid wastes from silicon kerf loss and the used quartz crucibles from silicon casting. The silicon kerf loss during wafer sawing was nearly 160,000 tonnes and the used crucible waste was nearly 70,000 tonnes in 2017. With the transition of wafering technology from the slurry-based wire to diamond wire sawing, recycling and reuse of kerf-loss silicon have become more feasible due to the lower impurity contents. In this paper, we aimed to find a simple approach to recycle the kerf loss and identify the purity for reuse. We first analyzed the contents of the as-received kerf-loss silicon from the industry. Then, suitable acids and refining procedure were proposed. The metals, especially nickel, could be easily reduced to several ppmw, boron and phosphorous to sub-ppmw, and carbon to several hundred ppmw, while oxygen was less than 5 wt%. Although the purity of the recycled silicon was not sufficient for casting feedstock, it had a comparable purity of about 5 N with the commercial silicon nitride releasing agent and crucibles used in silicon casting for solar cells. Because the nitride crucibles could be reused a few times for casting, the used crucible waste could be significantly reduced as well. (C) 2018 Elsevier Ltd. All rights reserved.
机译:随着全球光伏产业的快速发展,光伏产业产生的废物,尤其是硅切屑流失产生的固体废物和硅铸件用过的石英坩埚等,不容忽视。 2017年,硅片锯切过程中的硅切口损失近16万吨,废坩埚废料接近7万吨。随着硅片技术从基于浆料的线切割到金刚石线锯的转变,废切口硅的回收和再利用变得日益重要。由于杂质含量较低,因此更可行。在本文中,我们旨在找到一种简单的方法来回收切缝损失并确定可重复使用的纯度。我们首先分析了业界收到的切缝损耗硅的含量。然后,提出了合适的酸和精制方法。金属,尤其是镍,很容易被还原成ppmw,硼和磷被还原成低于ppmw,碳被还原成几百ppmw,而氧气少于5 wt%。尽管回收的硅的纯度不足以铸造原料,但其纯度可与用于太阳能电池的硅铸造中使用的市售氮化硅脱模剂和坩埚相比,达到约5N。由于氮化物坩埚可以重复使用几次进行铸造,因此使用的坩埚废料也可以大大减少。 (C)2018 Elsevier Ltd.保留所有权利。

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