Impact of Glancing Angle Deposition Technique on the Performance of SnS Thin Film Solar Cell: SCAPS-1D simulation

Shivani Gohri, Jaya Madan, R. Pandey
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引用次数: 2

Abstract

Thin film materials are outstanding in the field of solar cells because of their low cost and good performance. One such material is SnS, which has higher absorption coefficient and earth richness. However, to date, the efficiency of thin-film solar cells has not been up to date, which limits their potential use in the PV market. In this paper, we design and simulate an efficient SnS based solar cell using glancing angle deposition (GLAD) technique, by which the deposition angle of SnS can be altered. In this regard, CZTSSe based SnS solar cell which has 7.83% efficiency reported in our previous paper is used in this work to further increase the efficiency of SnS solar cells. The performance of SnS solar cell for 0° ,45°, 55°, 65°, 75°, 85° deposition angles of SnS is calculated using the SCAPS-1D simulator. The optimized results are obtained at 85° deposition angle of SnS. At this angle the VOC and JSC obtained are 0.66 V and 27.98 mA/cm2 respectively. Also, the efficiency achieved by this solar cell is 12.17%. The results obtained in this paper will open a path for the fabrication and development of SnS based solar cells.
掠射角沉积技术对SnS薄膜太阳能电池性能的影响:SCAPS-1D模拟
薄膜材料以其低廉的成本和良好的性能在太阳能电池领域占有突出的地位。其中一种材料是SnS,它具有较高的吸收系数和土壤丰富度。然而,到目前为止,薄膜太阳能电池的效率还没有跟上时代,这限制了它们在光伏市场上的潜在应用。本文采用掠射角沉积(GLAD)技术设计并模拟了一种高效的基于SnS的太阳能电池,该技术可以改变SnS的沉积角度。因此,本研究采用了我们之前报道的效率为7.83%的CZTSSe基SnS太阳能电池,进一步提高了SnS太阳能电池的效率。利用SCAPS-1D模拟器计算了0°、45°、55°、65°、75°、85°沉积角度下的SnS太阳能电池性能。在85°的沉积角度下,得到了最优的结果。在此角度下,得到的VOC和JSC分别为0.66 V和27.98 mA/cm2。此外,该太阳能电池的效率为12.17%。本文的研究结果将为基于SnS的太阳能电池的制造和发展开辟一条道路。
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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