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Zn(O,S) Buffer Layers and Thickness Variations of CdS Buffer for Cu2ZnSnS4 Solar Cells

机译:Cu2ZnSnS4太阳能电池的Zn(O,S)缓冲层和CdS缓冲层的厚度变化

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摘要

To improve the conduction band alignment and explore the influence of the buffer-absorber interface, we here investigate an alternative buffer for Cu2ZnSnS4 (CZTS) solar cells. The Zn(O, S) system was chosen since the optimum conduction band alignment with CZTS is predicted to be achievable, by varying oxygen to sulfur ratio. Several sulfur to oxygen ratios were evaluated to find an appropriate conduction band offset. There is a clear trend in open-circuit voltage Voc, with the highest values for the most sulfur rich buffer, before going to the blocking ZnS, whereas the fill factor peaks at a lower S content. The best alternative buffer cell in this series had an efficiency of 4.6% and the best CdS reference gave 7.3%. Extrapolating Voc values to 0 K gave activation energies well below the expected bandgap of 1.5 eV for CZTS, which indicate that recombination at the interface is dominating. However, it is clear that the values are affected by the change of buffer composition and that increasing sulfur content of the Zn(O, S) increases the activation energy for recombination. A series with varying CdS buffer thickness showed the expected behavior for short wavelengths in quantum efficiency measurements but the final variation in efficiency was small.
机译:为了提高导带对准并探索缓冲剂-吸收剂界面的影响,我们在这里研究用于Cu2ZnSnS4(CZTS)太阳能电池的替代缓冲剂。之所以选择Zn(O,S)系统,是因为通过改变氧与硫的比例,可以实现与CZTS的最佳导带对准。评价了几种硫与氧的比率,以找到合适的导带偏移。开路电压Voc有一个明显的趋势,即最富硫的缓冲液在进入封闭ZnS之前具有最大值,而填充因子在较低的S含量时达到峰值。该系列中最佳的备用缓冲池效率为4.6%,最佳的CdS参考量为7.3%。将Voc值外推至0K可得到的活化能远低于CZTS预期的1.5 eV带隙,这表明界面处的重组占主导地位。但是,很明显这些值受缓冲液组成变化的影响,而增加Zn(O,S)的硫含量会增加重组的活化能。具有一系列变化的CdS缓冲液厚度的系列在量子效率测量中显示了短波长的预期行为,但最终的效率变化很小。

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