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Enhancing quantum efficiency of thin-film silicon solar cells by Pareto optimality

机译:通过帕累托优化提高薄膜硅太阳能电池的量子效率

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We present a composite design methodology for the simulation and optimization of the solar cell performance. Our method is based on the synergy of different computational techniques and it is especially designed for the thin-film cell technology. In particular, we aim to efficiently simulate light trapping and plasmonic effects to enhance the light harvesting of the cell. The methodology is based on the sequential application of a hierarchy of approaches: (a) full Maxwell simulations are applied to derive the photon's scattering probability in systems presenting textured interfaces; (b) calibrated Photonic Monte Carlo is used in junction with the scattering matrices method to evaluate coherent and scattered photon absorption in the full cell architectures; (c) the results of these advanced optical simulations are used as the pair generation terms in model implemented in an effective Technology Computer Aided Design tool for the derivation of the cell performance; (d) the models are investigated by qualitative and quantitativesensitivity analysis algorithms, to evaluate the importance of the design parameters considered on the models output and to get a first order descriptions of the objective space; (e) sensitivity analysis results are used to guide and simplify the optimization of the model achieved through both Single Objective Optimization (in order to fully maximize devices efficiency) and Multi Objective Optimization (in order to balance efficiency and cost); (f) Local, Global and Glocal robustness of optimal solutions found by the optimization algorithms are statistically evaluated; (g) data-based Identifiability Analysis is used to study the relationship between parameters. The results obtained show a noteworthy improvement with respect to the quantum efficiency of the reference cell demonstrating that the methodology presented is suitable for effective optimization of solar cell devices.
机译:我们提出了一种用于模拟和优化太阳能电池性能的复合设计方法。我们的方法基于不同计算技术的协同作用,并且是专门为薄膜电池技术设计的。特别是,我们旨在有效模拟光捕获和等离子体效应,以增强细胞的光捕获能力。该方法基于一系列方法的顺序应用:(a)完整的麦克斯韦(Maxwell)模拟被用于导出呈现纹理界面的系统中的光子散射概率; (b)将校准的光子蒙特卡罗与散射矩阵方法结合使用,以评估全细胞架构中的相干和散射光子吸收; (c)这些先进的光学模拟结果被用作模型中的成对生成项,该模型在有效的技术计算机辅助设计工具中实现,以推导电池性能; (d)通过定性和定量敏感性分析算法对模型进行研究,以评估在模型输出中考虑的设计参数的重要性,并获得目标空间的一阶描述; (e)灵敏度分析结果用于指导和简化通过单目标优化(以便充分利用设备效率)和多目标优化(以平衡效率和成本)实现的模型优化; (f)对通过优化算法发现的最优解决方案的局部,全局和全局局部鲁棒性进行统计评估; (g)基于数据的可识别性分析用于研究参数之间的关系。获得的结果在参考电池的量子效率方面显示出显着的改进,表明所提出的方法适用于太阳能电池设备的有效优化。

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