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Effect of Temperature on Limit Photoconversion Efficiency in Silicon Solar Cells

机译:温度对硅太阳能电池极限光电转换效率的影响

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The photoconversion efficiency and the temperature coefficient of an ideal silicon solar cell are investigated theoretically as a function of the base thickness. It is found that the efficiency depends nonmonotonically, whereas the temperature coefficient increases logarithmically with the thickness. Under the AM1.5 G illumination conditions at the temperature of 25 degrees C, the maximal efficiency value of 29.7% at the thickness 90 mu m is obtained. The temperature coefficient has the value of 0.234%/K at the optimal base thickness. Analogous calculations were also performed for nonideal solar cells, in which the extrinsic recombination mechanisms, doping, and parasitic series and shunt resistance play a role. It is shown that all of these factors, except for the shunt resistance, result in an increase of the temperature coefficient relative to its value obtained for an ideal solar cell. In other words, the thickness-dependent value obtained for an ideal solar cell is the theoretical lower limit of the efficiency temperature coefficient if the shunting effect is negligible. The shunting resistance, in contrast, results in a further reduction of the temperature coefficient relative to the value obtained for an ideal solar cell. The implications of these findings in the solar cell design are discussed.
机译:理论上,理论上,作为基础厚度的函数来研究理想硅太阳能电池的光电转换效率和温度系数。结果发现效率不透明地取决于非语文,而温度系数随着厚度的对数而增加。在25摄氏度温度下的AM1.5g照明条件下,获得厚度90μm的最大效率值为29.7%。温度系数在最佳基础厚度下的值为0.234%/ k。还对非膜太阳能电池进行类似的计算,其中外本重组机构,掺杂和寄生系列以及分流抗性起作用。结果表明,除了分流电阻外,所有这些因素导致温度系数的增加相对于理想太阳能电池的值。换句话说,如果旋转效果可忽略不计,则为理想太阳能电池获得的厚度依赖值是效率温度系数的理论下限。相反,旋转抗性导致相对于用于理想太阳能电池的值的温度系数的进一步降低。讨论了这些发现在太阳能电池设计中的影响。

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