Improving the efficiency of an industrial silicon solar cell by doping with nickel

M. Bakhadirkhanov, Z. Kenzhaev, B. Ismaylov, V. Odzhaev, U. Prasalovich, Yu.N. Yankovski
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Abstract

The possibility of adjusting the operational parameters of industrial solar cells produced by the company Suniva based on monocrystalline silicon by means of additional diffusion doping with nickel in the temperature range 700–1200 °C has been investigated. It is shown that the optimal temperature of nickel diffusion is Tdiff = 800–850 °C. In this case the value of the maximum power Pmax increases by 20–28 % in relation to the parameters of the original industrial photocell. At diffusion temperatures Tdiff > 1000 °C, a sharp decrease in Pmax occurs, which is associated with an increase in the depth of the p–n-junction due to the distillation of phosphorus atoms during high-temperature diffusion of nickel. The positive effect of diffusion alloying with nickel on the electrophysical parameters of photocells is greatest in the case when the nickel impurity clusters are in the region of the p–n-junction, i. e. with diffusion alloying to the front side of the plate. The action of electrically neutral nickel clusters is less pronounced when they are located in the region of the isotypic p–p+ transition; in case of diffusion alloying with nickel in the opposite side of the plate.
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用镍掺杂提高工业硅太阳能电池的效率
本文研究了在700 ~ 1200℃温度范围内,通过扩散掺杂镍的方法来调整Suniva公司生产的单晶硅工业太阳能电池工作参数的可能性。结果表明,镍的最佳扩散温度为Tdiff = 800 ~ 850℃。在这种情况下,与原始工业光电池的参数相比,最大功率Pmax的值增加了20 - 28%。在扩散温度Tdiff > 1000℃时,Pmax急剧下降,这与镍在高温扩散过程中磷原子的蒸馏导致p - n结深度增加有关。当镍杂质团簇位于p - n结区域,即扩散合金化到板的正面时,镍扩散合金化对光电池电物理参数的积极影响最大。当电中性镍团簇位于p-p +同型跃迁区域时,其作用不明显;如果扩散合金与镍在板的另一边。
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