Improving the efficiency of kesterite solar cells using semi-ellipsoidal nanostructures

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Abstract

The use of kesterite materials in photovoltaic solar cells holds great promise due to their abundance, non-toxic nature, cost-effectiveness, and excellent optoelectronic properties. However, the power conversion efficiency of kesterite solar cells remains considerably below the Shockley-Queisser limit efficiency. This underscores the need for continuous development of new cell designs to maximize kesterite's potential for solar energy conversion. In this study, we presented a novel design for a kesterite solar cell incorporating semi-ellipsoidal nanostructures into the active layer to overcome its limitations and achieve higher efficiencies. Comprehensive simulations were conducted to study the effect of these nanostructures on solar cell performance. An extensive parametric study was also performed to identify the design parameters for the best performance. The results revealed that the presence of nanostructures significantly enhances power conversion efficiency, reaching a remarkable 17.6%, overcoming many challenging obstacles facing kesterite solar cells and making them more competitive in the ever-expanding solar cell market.

利用半椭球形纳米结构提高钾长石太阳能电池的效率
由于钾长石材料的丰富性、无毒性、成本效益和出色的光电特性,在光伏太阳能电池中使用钾长石材料大有可为。然而,钾长石太阳能电池的功率转换效率仍然大大低于肖克利-奎塞尔极限效率。这突出表明,需要不断开发新的电池设计,以最大限度地发挥钾长石在太阳能转换方面的潜力。在本研究中,我们提出了一种新颖的钾长石太阳能电池设计,在活性层中加入半椭球形纳米结构,以克服其局限性并实现更高的效率。我们进行了全面模拟,研究这些纳米结构对太阳能电池性能的影响。此外,还进行了广泛的参数研究,以确定实现最佳性能的设计参数。研究结果表明,纳米结构的存在大大提高了功率转换效率,达到了惊人的 17.6%,克服了钾长石太阳能电池面临的许多挑战性障碍,使其在不断扩大的太阳能电池市场中更具竞争力。
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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