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Optimization of the absorption efficiency of an amorphous-silicon thin-film tandem solar cell backed by a metallic surface-relief grating

机译:金属表面浮雕光栅支持的非晶硅薄膜串联太阳能电池吸收效率的优化

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The rigorous coupled-wave approach was used to compute the plane-wave absorptance of a thin-film tandem solar cell with a metallic surface-relief grating as its back reflector. The absorptance is a function of the angle of incidence and the polarization state of incident light; the free-space wavelength; and the period, duty cycle, the corrugation height, and the shape of the unit cell of the surface-relief grating. The solar cell was assumed to be made of hydrogenated amorphous-silicon alloys and the back reflector of bulk aluminum. The incidence and the grating planes were taken to be identical. The AM1.5 solar irradiance spectrum was used for computations in the 400-1100 nm wavelength range. Inspection of parametric plots of the solar-spectrum-integrated (SSI) absorption efficiency and numerical optimization using the differential evolution algorithm were employed to determine the optimal surface-relief grating. For direct insolation, the SSI absorption efficiency is maximizable by appropriate choices of the period, the duty cycle, and the corrugation height, regardless of the shape of the corrugation in each unit cell of the grating. A similar conclusion also holds for diffuse insolation, but the maximum efficiency for diffuse insolation is about 20% smaller than for direct insolation. Although a tin-doped indium-oxide layer at the front and an aluminum-doped zinc-oxide layer between the semiconductor material and the backing metallic layer change the optimal depth of the periodic corrugations, the optimal period of the corrugations does not significantly change.
机译:严格的耦合波方法被用于计算以金属表面浮雕光栅作为背反射器的薄膜串联太阳能电池的平面波吸收率。吸收率是入射角和入射光的偏振态的函数。自由空间波长;以及表面浮雕光栅的周期,占空比,波纹高度和单位晶胞的形状。假定太阳能电池由氢化非晶硅合金和块状铝的背面反射器制成。入射角和光栅平面被认为是相同的。 AM1.5太阳辐照光谱用于在400-1100 nm波长范围内进行计算。利用太阳光谱积分(SSI)吸收效率的参数图检查和使用微分演化算法的数值优化来确定最佳的浮雕光栅。对于直接日晒,所述SSI吸收效率是通过周期,占空比,和波纹高度的适当的选择最大化的,而不管在所述光栅的每个单元电池中的波纹的形状。对于漫射日光也有类似的结论,但漫射日光的最大效率比直接日射小约20%。尽管在半导体材料和背衬金属层之间的前部的锡掺杂的氧化铟层和铝的掺杂的氧化锌层改变了周期性波纹的最佳深度,但是波纹的最佳周期并未显着改变。

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