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Darwin at High Temperature: Advancing Solar Cell Material Design Using Defect Kinetics Simulations and Evolutionary Optimization

机译:达尔文在高温下:利用缺陷动力学模拟和进化优化推进太阳能电池材料设计

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摘要

Material defects govern the performance of a wide range of energy conversion and storage devices, including photovoltaics, thermoelectrics, and batteries. The success of large-scale, cost-effective manufacturing hinges upon rigorous material optimization to mitigate deleterious defects. Material processing simulations have the potential to accelerate novel energy technology development by modeling defect-evolution thermodynamics and kinetics during processing of raw materials into devices. Here, a predictive process optimization framework is presented for rapid material and process development. A solar cell simulation tool that models defect kinetics during processing is coupled with a genetic algorithm to optimize processing conditions in silico. Experimental samples processed according to conditions suggested by the optimization show significant improvements in material performance, indicated by minority carrier lifetime gains, and confirm the simulated directions for process improvement. This material optimization framework demonstrates the potential for process simulation to leverage fundamental defect characterization and high-throughput computing to accelerate the pace of learning in materials processing for energy applications.
机译:材料缺陷控制着广泛的能量转换和存储设备的性能,其中包括光伏,热电和电池。大规模,具有成本效益的制造成功与否取决于严格的材料优化以减轻有害缺陷。通过对将原材料加工成器件的缺陷演化热力学和动力学进行建模,材料加工仿真具有加速新型能源技术发展的潜力。在此,提出了一种可预测的过程优化框架,用于快速的材料和过程开发。在处理过程中对缺陷动力学建模的太阳能电池仿真工具与遗传算法结合使用,可以优化计算机处理条件。根据优化建议的条件处理的实验样品显示出材料性能的显着改善(由少数载流子寿命的增加所表明),并确定了模拟过程改进的方向。该材料优化框架展示了过程仿真利用基础缺陷表征和高通量计算来加速能源应用材料加工学习速度的潜力。

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