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首页> 外文期刊>International Journal of Photoenergy >Prospects of Back Surface Field Effect in Ultra-Thin High-Efficiency CdS/CdTe Solar Cells from Numerical Modeling
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Prospects of Back Surface Field Effect in Ultra-Thin High-Efficiency CdS/CdTe Solar Cells from Numerical Modeling

机译:数值建模在超薄高效CdS / CdTe太阳能电池中的背面场效应展望

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摘要

Polycrystalline CdTe shows greater promises for the development of cost-effective, efficient, and reliable thin film solar cells. Results of numerical analysis using AMPS-1D simulator in exploring the possibility of ultrathin, high efficiency, and stable CdS/CdTe cells are presented. The conventional baseline case structure of CdS/CdTe cell has been explored with reduced CdTe absorber and CdS window layer thickness, where 1 μm thin CdTe and 50 nm CdS layers showed reasonable efficiencies over 15%. The viability of 1 μm CdTe absorber layer together with possible back surface field (BSF) layers to reduce minority carrier recombination loss at the back contact in ultra thin CdS/CdTe cells was investigated. Higher bandgap material like ZnTe and low bandgap materials like Sb2Te3and As2Te3as BSF were inserted to reduce the holes barrier height in the proposed ultra thin CdS/CdTe cells. The proposed structure of SnO2/Zn2SnO4/CdS/CdTe/As2Te3/Cu showed the highest conversion efficiency of 18.6% (Voc= 0.92 V,Jsc= 24.97 mA/cm2, and FF = 0.81). However, other proposed structures such as SnO2/Zn2SnO4/CdS/CdTe/Sb2Te3/Mo and SnO2/Zn2SnO4/CdS/CdTe/ZnTe/Al have also shown better stability at higher operating temperatures with acceptable efficiencies. Moreover, it was found that the cells normalized efficiency linearly decreased with the increased operating temperature with relatively lower gradient, which eventually indicates better stability of the proposed ultra thin CdS/CdTe cells.
机译:多晶CdTe对于开发具有成本效益,高效且可靠的薄膜太阳能电池具有更大的希望。提出了使用AMPS-1D模拟器进行数值分析的结果,以探索超薄,高效和稳定的CdS / CdTe细胞的可能性。在减少CdTe吸收剂和CdS窗口层厚度的情况下,已经探索了CdS / CdTe电池的常规基线情况结构,其中1μm的CdTe薄层和50 nm的CdS层显示出15%以上的合理效率。研究了1μmCdTe吸收层与可能的背面场(BSF)层在超薄CdS / CdTe电池中减少背面接触时少数载流子复合损失的可行性。在拟议的超薄CdS / CdTe电池中,插入了较高带隙的材料(如ZnTe)和低带隙的材料(如Sb2Te3和As2Te3as BSF),以降低空穴势垒高度。拟议的结构SnO2 / Zn2SnO4 / CdS / CdTe / As2Te3 / Cu的最高转换效率为18.6%(Voc = 0.92 V,Jsc = 24.97 mA / cm2,FF = 0.81)。但是,其他建议的结构,例如SnO2 / Zn2SnO4 / CdS / CdTe / Sb2Te3 / Mo和SnO2 / Zn2SnO4 / CdS / CdTe / ZnTe / Al也显示出在较高的工作温度下具有可接受的效率的更好的稳定性。此外,已经发现,随着操作温度的升高,电池的归一化效率线性下降,梯度相对较低,这最终表明所提出的超薄CdS / CdTe电池具有更好的稳定性。

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