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One-dimensional modeling for optoelectrical simulation of a mesoporous perovskite solar cell

机译:中孔植物太阳能电池光电模拟的一维建模

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摘要

The metal-halide perovskite solar cell (PSC) has risen to the forefront of photovoltaic research, and presents the potential for low-cost fabrication with high-power conversion efficiency. Better understanding of the PSC operation mechanism is necessary and required to further improve the performance of the device. Therefore, in addition to numerous experimental studies, some number of optoelectrical simulations are necessary. However, usually, simulations are either electrical or optical and more in relation to one-dimensional (1D) structures such as planar cells. In this study, an approach to optoelectrical simulation of a 31) solar cell, such as the mesoporous PSC, has been presented. First, the 3D layers, such as the mesoporous layer, are modeled to a 1D effective layer using Bergman's effective medium theory. By using the spectral density function, this effective medium theory is able to introduce the 1D equivalent of the 3D layer. Then, the optical results by transfer matrix method are transferred to the SCAPS-1D code, in order to simulate the EQE spectrum and the JV curve of solar cells. The simulation results were compared with the experimental results for two mesoporous PSC, one without a capping perovskite layer and the other with the capping layer. The results of this study showed that the proposed procedure can simulate and therefore investigate the optoelectrical properties of 3D mesoporous solar cells, which can also be extended to similar 3D structures. This 1 D simulation procedure, compared to 313 simulation, has a much lower execution time offering more simplicity and no need for commercial codes or specific hardware. (C) 2019 Optical Society of America
机译:金属卤化物钙钙钛矿太阳能电池(PSC)已经上升到光伏研究的最前沿,并提出了具有高功率转换效率的低成本制造的潜力。更好地了解PSC操作机制是必要的,并且需要进一步提高设备的性能。因此,除了许多实验研究之外,还需要一些多数光电模拟。然而,通常,模拟是电气或光学,更有于与平面细胞的一维(1D)结构更有关。在本研究中,已经介绍了一种用于31)太阳能电池的光电模拟的方法,例如中孔PSC。首先,诸如中孔层的3D层使用Bergman的有效媒介理论建模到1D有效层。通过使用光谱密度函数,这种有效介质理论能够引入3D层的1D等效物。然后,通过传输矩阵方法的光学结果被传送到剪刀-1D码,以模拟SQE频谱和太阳能电池的JV曲线。将模拟结果与两个中孔PSC的实验结果进行了比较,其中没有覆盖钙钛矿层,另一个具有封盖层。该研究的结果表明,所提出的程序可以模拟并因此研究3D中孔太阳能电池的光电性能,这也可以扩展到相似的3D结构。这1 D仿真程序与313仿真相比,具有更低的执行时间,提供更简单,不需要商业代码或特定硬件。 (c)2019年光学学会

著录项

  • 来源
    《Applied optics》 |2019年第26期|共8页
  • 作者

    Haidari Gholamhosain;

  • 作者单位

    Shahrekord Univ Fac Sci Dept Phys Shahrekord Iran;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用;
  • 关键词

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