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Graded Carrier Concentration Absorber Profile for High Efficiency CIGS Solar Cells

机译:高效CIGS太阳能电池的分级载流子浓度吸收剂分布

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We demonstrate an innovative CIGS-based solar cells model with a graded doping concentration absorber profile, capable of achieving high efficiency values. In detail, we start with an in-depth discussion concerning the parametrical study of conventional CIGS solar cells structures. We have used the wxAMPS software in order to numerically simulate cell electrical behaviour. By means of simulations, we have studied the variation of relevant physical and chemical parameters—characteristic of such devices—with changing energy gap and doping density of the absorber layer. Our results show that, in uniform CIGS cell, the efficiency, the open circuit voltage, and short circuit current heavily depend on CIGS band gap. Our numerical analysis highlights that the band gap value of 1.40 eV is optimal, but both the presence of Molybdenum back contact and the high carrier recombination near the junction noticeably reduce the crucial electrical parameters. For the above-mentioned reasons, we have demonstrated that the efficiency obtained by conventional CIGS cells is lower if compared to the values reached by our proposed graded carrier concentration profile structures (up to 21%).
机译:我们演示了一种创新的基于CIGS的太阳能电池模型,具有渐变的掺杂浓度吸收剂分布,能够实现高效率值。详细地说,我们从对常规CIGS太阳能电池结构的参数研究的深入讨论开始。我们已经使用wxAMPS软件来数值模拟电池的电性能。通过模拟,我们研究了相关物理和化学参数(此类器件的特性)随吸收层的能隙和掺杂密度的变化而变化。我们的结果表明,在均匀CIGS电池中,效率,开路电压和短路电流在很大程度上取决于CIGS带隙。我们的数值分析表明,带隙值为1.40 eV是最佳的,但是钼背接触的存在和结附近的高载流子复合都明显降低了关键的电参数。由于上述原因,我们已经证明,与我们提出的分级载流子浓度分布结构所达到的值相比,常规CIGS电池所获得的效率较低(最高21%)。

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