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Different Bandgaps in Cu$_2$ ZnSnSe$_4$: A High Temperature Coevaporation Study

机译:Cu $ _ 2 $ ZnSnSe $ _4 $ :高温共蒸发研究

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We present a high-temperature CuZnSnSe coevaporation study, where solar cells with a power conversion efficiency of 7.1% have been achieved. The process is monitored with laser light scattering in order to follow the incorporation of the Sn into the film. We observe the segregation of ZnSe at the Mo/CZTSe interface. Optical analysis has been carried out with photoluminescence and spectrophotometry. We observe strong band tailing and a bandgap, which is significantly lower than in other reported efficient CZTSe absorbers. The photoluminescence at room temperature is lower than the bandgap due to the existence of a large quantity of tail states. Finally, we present effects of low-temperature postannealing of the absorbers on ordering of the Cu/Zn atoms in CZTSe and solar cell parameters. We observe strong changes in all solar cell parameters upon annealing. The efficiency of the annealed devices is significantly reduced, although ordering is improved compared with ones made from nonannealed absorbers.
机译:我们目前进行高温CuZnSnSe共蒸发研究,其中已经实现了功率转换效率为7.1%的太阳能电池。用激光散射监测该过程,以便跟踪将Sn掺入薄膜中的过程。我们观察到Mo / CZTSe界面处ZnSe的偏析。用光致发光和分光光度法进行了光学分析。我们观察到强带拖尾和带隙,这明显低于其他报道的有效CZTSe吸收剂。由于存在大量的尾态,因此室温下的光致发光低于带隙。最后,我们介绍了吸收剂的低温后退火对CZTSe中Cu / Zn原子的顺序和太阳能电池参数的影响。我们观察到退火后所有太阳能电池参数的强烈变化。退火设备的效率显着降低,尽管与非退火吸收器相比,订购效率有所提高。

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