A new CsPbI2Br/CuZnSnSSe/Si tandem solar cell with higher than 32 % efficiency

IF 2.7 Q2 PHYSICS, CONDENSED MATTER Micro and Nanostructures Pub Date : 2024-08-02 DOI:10.1016/j.micrna.2024.207940
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Abstract

To avoid Shockley-Queisser limit in single p-n junctions, tandem solar cells were proposed. A new tandem cell is simulated here using the 1-dimensional SCAPS. The new cell combines two reported single solar cells together, aiming at achieving high performance by optimizing various layer characteristics. The bottom sub-cell is Mo/Si(p)/CZTSSe(p)/CdS(n)/ZnO(i)/ZnO(Al), where ZnO is an electrodeposited transparent-conductor oxide, with high UV transmittance, ZnO(i) is intrinsic layer, CZTSSe/Si is bi-absorber layer of p-CuZnSnSSe and p-Si, Mo is back contact. The optimized sub-cell exhibits a high fill factor of 85.18 % with overall efficiency 20 %. Based on literature, a perovskite CsPbI2Br layer is included in the top sub-cell Cu2O(HTL)/CsPbI2Br)/TiO2(ETL), where Cu2O is a hole-transport layer and TiO2 is electron-transport layer. The top sub-cell layers have been carefully selected for best alignment. Matching and optimizing various parameters in the two sub-cells is a simulation challenge. Therefore, layers in the two sub-cells have been studied separately, keeping in mind the proper combinations between various layers. With optimized layer thicknesses and band gaps, together with proper alignment of band edges, the proposed tandem solar cell exhibits high characteristics of 80 % fill factor and higher than 32 % overall efficiency.

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效率高于 32% 的新型硒化钴/硒化铜/硅串联太阳能电池
为了避免单 p-n 结的肖克利-奎塞尔极限,有人提出了串联太阳能电池。本文使用一维 SCAPS 模拟了一种新型串联电池。新电池将两个已报道的单太阳能电池组合在一起,旨在通过优化各种层特性来实现高性能。底层子电池为 Mo/Si(p)/CZTSSe(p)/CdS(n)/ZnO(i)/ZnO(Al),其中 ZnO 是一种电沉积透明导电氧化物,具有很高的紫外线透过率,ZnO(i) 是本征层,CZTSSe/Si 是 p-CuZnSnSSe 和 p-Si 的双吸收层,Mo 是背接触。优化后的子电池显示出 85.18 % 的高填充系数和 20 % 的总效率。根据文献,在顶层子电池 Cu2O(HTL)/CsPbI2Br)/TiO2(ETL) 中加入了过氧化物 CsPbI2Br 层,其中 Cu2O 为空穴传输层,TiO2 为电子传输层。顶层子电池层经过精心挑选,以实现最佳排列。匹配和优化两个子电池中的各种参数是一项模拟挑战。因此,我们对两个子电池中的各层分别进行了研究,同时牢记各层之间的适当组合。经过优化的层厚度和带隙,再加上适当的带边排列,所提出的串联太阳能电池显示出 80% 的填充因子和高于 32% 的总效率的高特性。
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