Synthesis and fabrication of superstrate and substrate Cu2ZnSnS4/CdS thin film solar cells utilizing copper powder as local materials

E. Prima, Anggi Datiatur Rahmat, A. Setiawan
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Abstract

Cu2ZnSnS4 is a promising material for low-cost thin-film solar cells. This paper reports a new approach to fabricating a solar cell using a Superstrate and Substrate configuration. We utilized a non-vacuum deposition process to deposit Copper Zinc Tin Sulfate (CZTS) and Cadmium Sulphate (CdS) on a glass substrate. To achieve this, we adopted the sol-gel spin coating method for CZTS and the Chemical Bath Deposition (CBD) method for the CdS layer. The solar cell has two structures: ITO/Cu2ZnSnS4/CdS/Ag for substrate configuration and ITO/CdS/Cu2ZnSnS4/Ag for superstrate configuration. The Cu/(Zn+Sn) atomic ratio was set to 0.86, while Zn/Sn was set to 1.25. Our CZTS/CdS solar cell achieved a 48.7 × 10-6 % power conversion efficiency with a 1.40 eV band gap and 98.71 % external quantum efficiency at 373 nm for the superstrate configuration. For the substrate configuration, the power conversion efficiency was 19.0 × 10-6 % with a 1.49 eV bandgap and 95.74 % external quantum efficiency at 321 nm. Based on the results presented in the text, the CZTS solar cell with a superstrate configuration achieved a higher power conversion efficiency and external quantum efficiency than the substrate configuration. The superstrate configuration allowed for better light absorption in the CZTS layer and reduced the reflection of light back into the substrate. This configuration also prevented the back diffusion of CdS into CZTS and improved the electrical performance of the solar cell. Therefore, the superstrate configuration is more efficient than the substrate configuration for CZTS solar cells.
以铜粉为局部材料的Cu2ZnSnS4/CdS薄膜太阳能电池的合成与制备
Cu2ZnSnS4是一种很有前途的低成本薄膜太阳能电池材料。本文报道了一种利用叠层和衬底结构制造太阳能电池的新方法。我们利用非真空沉积工艺在玻璃基板上沉积硫酸铜锌锡(CZTS)和硫酸镉(CdS)。为此,我们对CZTS采用溶胶-凝胶自旋镀膜方法,对CdS层采用化学浴沉积(CBD)方法。该太阳能电池具有两种结构:ITO/Cu2ZnSnS4/CdS/Ag为衬底结构,ITO/CdS/Cu2ZnSnS4/Ag为上覆结构。Cu/(Zn+Sn)原子比设置为0.86,Zn/Sn设置为1.25。我们的CZTS/CdS太阳能电池在373 nm处获得了48.7 × 10- 6%的功率转换效率和98.71%的外量子效率,带隙为1.40 eV。对于衬底结构,功率转换效率为19.0 × 10- 6%,带隙为1.49 eV,在321 nm处的外量子效率为95.74%。结果表明,与衬底结构相比,采用上层结构的CZTS太阳能电池具有更高的功率转换效率和外量子效率。叠层结构允许在CZTS层中更好地吸收光,并减少光反射回衬底。这种结构也阻止了CdS向CZTS的反向扩散,提高了太阳能电池的电性能。因此,叠层结构比衬底结构对CZTS太阳能电池更有效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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