Growth of Si single ingots with large diameter (∼45 cmφ) and high yield of high conversion efficiency (≥ 18 %) cells using a small crucible (∼50 cmφ) by noncontact crucible method

K. Nakajima, S. Ono, Yuzuru Kaneko, R. Murai, K. Shirasawa, T. Fukuda, H. Takato
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Abstract

As an advanced cast method, we proposed the noncontact crucible (NOC) method to obtain ingots with large diameter and diameter ratio using small crucible. By controlling the size of the low-temperature region, a Si single ingot with a 45 cm diameter was obtained using a 50 cm diameter crucible. As the oxygen concentration was always lower than that of Czochralski (CZ) ingots, a p-type ingot was prepared to determine the distribution of conversion efficiency. All (100 %) regular solar cells grown by the NOC method had higher conversion efficiency than 18.2% when using the same solar cell structure and process to obtain the conversion efficiency of 19.0% for a p-type CZ wafer. Therefore, the final yield of high efficiency solar cells prepared by the NOC method will be higher than that of the cast method when the suitable diameter will be selected.
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采用非接触坩埚法在小坩埚(~ 50 cmφ)上生长大直径(~ 45 cmφ)和高转化率(≥18%)晶胞的Si单锭
作为一种先进的铸造方法,我们提出了用小坩埚获得大直径、大径比钢锭的非接触坩埚法。通过控制低温区的尺寸,在直径为50 cm的坩埚中获得了直径为45 cm的Si单锭。由于氧浓度总是低于CZ铸锭,因此制备了p型铸锭,以确定转换效率的分布。在p型CZ晶圆上,当采用相同的太阳能电池结构和工艺,获得19.0%的转换效率时,所有(100%)NOC方法生长的常规太阳能电池的转换效率均高于18.2%。因此,当选择合适的直径时,NOC法制备的高效太阳能电池的最终产率将高于铸造法。
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