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Doping optimization of solar grade (SOG) silicon ingots for increasing ingot yield and cell efficiency

机译:太阳能级(SOG)硅锭的掺杂优化可提高锭的产量和电池效率

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In the near future, SoG will become the principal material for photovoltaic ingot production as it requires much less energy for purification compared to silicon grades using gas transformation and purification (usually Siemens process or equivalent also used for electronic-grade preparation). In this study, several kinds of silicon have been compared with different dopant contents (mainly boron and phosphorus). Ingot yield and cell efficiency have been optimized for each source of silicon at a commercial level (450 kg ingots) using boron or gallium doping. Starting from the resistivity specification given by the cell process, the doping level has been adjusted in order to maximize the ingot silicon yield (weight of silicon bricks used for wafer cutting/weight of silicon ingot). After doping adjustment, ingot quality has been checked, i.e. brick resistivity and lifetime of minority carriers, and wafers have been processed to solar cells. Doping optimization has led to comparable ingot yields and cell efficiencies using SoG and silicon purified by Siemens process or equivalent. The study has been implemented at the Kazakhstan Solar Silicon Plant in Ust-Kamenogorsk using Kazakhstan SoG, SoG has been received from a European manufacturer and polycrystalline silicon has been purified using the Siemens process. Directional solidification furnaces have been manufactured by ECM Technologies, France.
机译:在不久的将来,SoG将成为生产光伏锭的主要材料,因为与使用气体转化和提纯的硅级产品(通常是西门子工艺或等效工艺也用于电子级制备)相比,提纯所需的能量要少得多。在这项研究中,已经比较了几种具有不同掺杂剂含量的硅(主要是硼和磷)。使用硼或镓掺杂,已针对商业水平的每种硅源(450公斤铸锭)优化了铸锭产量和电池效率。从电池工艺给出的电阻率规格开始,已对掺杂水平进行了调整,以使硅锭的硅产量最大化(用于晶片切割的硅砖的重量/硅锭的重量)。掺杂调整后,已检查铸锭质量,即砖电阻率和少数载流子的寿命,并且晶片已加工成太阳能电池。掺杂优化使用SoG和通过Siemens工艺或同等工艺提纯的硅,产生了可比的铸锭产量和电池效率。这项研究已经在哈萨克斯坦卡梅诺哥尔斯克的哈萨克斯坦太阳能硅厂使用哈萨克斯坦SoG进行了研究,SoG已从一家欧洲制造商处获得,多晶硅已经使用西门子工艺进行了纯化。定向凝固炉由法国ECM Technologies制造。

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