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Improvement of CIGS solar cell efficiency with graded bandgap absorber layer

机译:用渐变带隙吸收层的CIGS太阳能电池效率的改进

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摘要

There are several ways to increase the efficiency of a solar cell. In addition to increasing efficiency, the important subject is to build the cell at a lower cost and try to reduce the heat losses of the cell. In this article, research was conducted on CIGS solar cell in which some methods were proposed that in addition to reducing the losses of a CIGS solar cell, we could achieve maximum efficiency with the minimum thickness of the absorber layer. To simulate and perform mathematical calculations, the Atlas software of Silvaco was used in this research. It should be noted that in all proposed structures, the thickness of the layer is minimized, and also the absorber layer is p-type. In the first stage, the structure of a ZnO:Al/Zn_(0.83)Mg_(0.17)O/ CdS/Graded CIGS/MO was simulated in which the thickness of the graded CIGS (absorber layer) is 1 urn. Graded CIGS is a structure in which the bandgap of material CuIn_(1-x)Ga_xSe_2 changes linearly from x_1 to x_2. In this study, the x variation is from 0.7 to 0.1, so that the decrease in x corresponds to the decrease in band gap linearly from 1.45 to 1.07 eV. In this stage, the cell efficiency was 17.1%. In the second stage, the buffer layer was upgraded to increase the cell efficiency, that is, instead of CdS layer with the bandgap of 2.4 eV, ZnO_(0.5)S_(0.5) with the bandgap of 2.8 eV was used that made the efficiency to become 19.0%. In the third stage, an electron reflector layer was added to the structure of the first stage; indeed at this stage, the effect of the electron reflector layer on the solar cell of the first stage was displayed. In the fourth stage (last stage), CGS (CGS is CuGaSe_2) layer was used as the electron reflector layer, which caused the cell efficiency to reach 28.3%.
机译:有几种方法可以提高太阳能电池的效率。除了提高效率外,重要的主题是以较低的成本构建细胞,并尝试降低细胞的热损失。在本文中,在CIGS太阳能电池上进行了研究,其中提出了一些方法,除了降低CIGS太阳能电池的损失之外,我们还可以通过吸收层的最小厚度达到最大效率。为了模拟和执行数学计算,在本研究中使用了Silvaco的Atlas软件。应注意,在所有提出的结构中,层的厚度最小化,并且吸收层也是p型。在第一阶段,模拟ZnO:Al / Zn_(0.83)Mg_(0.17)O / Cds /梯度CIGS / Mo的结构,其中梯度CIGS(吸收层)的厚度为1瓮。分级CIG是一种结构,其中材料Cuin_(1-x)Ga_sse_2的带隙从X_1线性地改变为X_2。在该研究中,X变型为0.7至0.1,因此X的减少对应于与1.45到1.07 EV线性的带隙的减小。在这个阶段,电池效率为17.1%。在第二阶段,升级缓冲层以提高电池效率,即使用2.4eV的带隙的CDS层,ZnO_(0.5)S_(0.5)使用2.8eV的带隙,这使得效率成为19.0%。在第三阶段,向第一阶段的结构中加入电子反射器层;实际上,在该阶段,显示电子反射器层对第一阶段的太阳能电池上的效果。在第四阶段(最后阶段)中,CGS(CGS是Cugase_2)层用作电子反射器层,这导致电池效率达到28.3%。

著录项

  • 来源
    《Journal of materials science》 |2021年第2期|2041-2050|共10页
  • 作者单位

    Department of Electronic Engineering Semnan Branch Islamic Azad University Semnan Iran;

    Department of Electronic Faculty of Electrical and Computer Engineering Semnan University Semnan Iran;

    Department of Electronic Engineering Semnan Branch Islamic Azad University Semnan Iran;

    Department of Electronic Engineering Semnan Branch Islamic Azad University Semnan Iran;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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