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In-Depth Characterization of Secondary Phases in Cu2ZnSnS4 Film and Its Application to Solar Cells

机译:Cu2ZnSnS4薄膜中第二相的深度表征及其在太阳能电池中的应用

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摘要

Secondary phases are common in Cu2ZnSnS4 (CZTS) thin films, which can be fatal to the performance of solar cell devices fabricated from this material. They are difficult to detect by X-Ray diffraction (XRD) because of the weak peak in spectra compared with the CZTS layer. Herein, it was found that in-depth elemental distribution by a secondary ion mass spectroscopy method illustrated uniform film composition in the bulk with slight fluctuation between different grains. X-ray photoelectron spectroscopy (XPS) measurement was conducted after sputtering the layer with different depths. An Auger electron spectrum with Auger parameter were used to check the chemical states of elements and examine the distribution of secondary phases in the CZTS films. Secondary phases of CuS, ZnS and SnS were detected at the surface of the CZTS film within a 50-nm thickness while no secondary phases were discovered in the bulk. The solar cell fabricated with the as-grown CZTS films showed a conversion efficiency of 2.1% (Voc: 514.3 mV, Jsc: 10.4 mA/cm2, FF: 39.3%) with an area of 0.2 cm2 under a 100 mW/cm2 illumination. After a 50-nm sputtering on the CZTS film, the conversion efficiency of the solar cell was improved to 6.2% (Voc: 634.0 mV, Jsc: 17.3 mA/cm2, FF: 56.9%).
机译:次生相在Cu2ZnSnS4(CZTS)薄膜中很常见,这可能会对用这种材料制成的太阳能电池器件的性能造成致命影响。由于与CZTS层相比光谱中的峰较弱,因此很难通过X射线衍射(XRD)进行检测。在此,发现通过二次离子质谱法的深入元素分布说明了整体中的膜组成均匀,并且不同晶粒之间的波动很小。在溅射具有不同深度的层之后,进行X射线光电子能谱(XPS)测量。带有俄歇参数的俄歇电子能谱用于检查元素的化学状态并检查CZTS薄膜中次生相的分布。在CZTS膜表面50nm厚度内检测到了CuS,ZnS和SnS的次级相,而在主体中未发现次级相。用成膜的CZTS薄膜制造的太阳能电池的转换效率为2.1%(Voc:514.3 mV,Jsc:10.4 mA / cm 2 ,FF:39.3%),面积为0.2 cm 2 在100 mW / cm 2 照明下。在CZTS膜上进行50 nm溅射后,太阳能电池的转换效率提高到6.2%(Voc:634.0 mV,Jsc:17.3 mA / cm 2 ,FF:56.9%)。

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