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Secondary Crystalline Phases Influence on Optical Properties in Off-Stoichiometric Cu

机译:二次结晶相对脱离化学计量Cu中的光学性质的影响

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摘要

Cu2ZnSnS4 (CZTS) is an economically and environmentally friendly alternative to other toxic and expensive materials used for photovoltaics, however, the variation in the composition during synthesis is often followed by the occurrence of the secondary binary and ternary crystalline phases. These phases produce changes in the optical absorption edge important in cell efficiency. We explore here the secondary phases that emerge in a combinatorial Cu2S–ZnS–SnS2 thin films library. Thin films with a composition gradient were prepared by simultaneous magnetron sputtering from three binary chalcogenide targets (Cu2S, SnS2 and ZnS). Then, the samples were crystallized by sulfurization annealing at 450 °C under argon flow. Their composition was measured by energy dispersive X-ray spectroscopy (EDX), whereas the structural and optical properties were investigated by grazing incidence X-ray diffraction (GIXRD), Raman spectroscopy and optical transmission measurements. As already known, we found that annealing in a sulfur environment is beneficial, increasing the crystallinity of the samples. Raman spectroscopy revealed the presence of CZTS in all the samples from the library. Secondary crystalline phases such as SnS2, ZnS and Cu–S are also formed in the samples depending on their proximity to the binary chalcogenide targets. The formation of ZnS or Cu–S strongly correlates with the Zn/Sn and Cu/Zn ratio of the total sample composition. The presence of these phases produces a variation in the bandgap between 1.41 eV and 1.68 eV. This study reveals that as we go further away from CZTS in the composition space, in the quasi-ternary Cu2S–ZnS–SnS2 diagram, secondary crystalline phases arise and increase in number, whereas the bandgap takes values outside the optimum range for photovoltaic applications.
机译:Cu2ZNS4(CZT)是一种用于光伏的其他有毒和昂贵的材料的经济和环保的替代物,然而,合成期间的组合物的变化通常在发生二元二元和三元结晶相的发生之后。这些阶段产生在细胞效率中重要的光学吸收边缘的变化。我们在这里探讨了组合CU2S-ZNS-SNS2薄膜库中的次级阶段。通过从三个二元硫族化物靶标的磁控溅射(Cu 2 S,SNS2和ZnS)通过同时磁控溅射制备具有组合梯度的薄膜。然后,通过在氩气下在450℃下通过硫化退火结晶样品。通过能量分散X射线光谱(EDX)测量它们的组合物,而通过放牧入射X射线衍射(GixRD),拉曼光谱和光学传输测量来研究结构和光学性质。如已知的,我们发现在硫环境中退火是有益的,增加样品的结晶度。拉曼光谱显示在图书馆的所有样品中揭示了CZTS的存在。诸如SNS2,ZnS和Cu-S的次级结晶相也根据其对二元硫属化物靶标的邻近来形成。 ZnS或Cu-S的形成与总样品组合物的Zn / Sn和Cu ​​/ Zn比强烈相关。这些阶段的存在产生1.41eV和1.68eV之间的带隙的变化。本研究表明,当我们在组合物空间中进一步远离CZTS时,在准三数组-ZNS-SNS2图中,次级结晶相产生并增加数量,而带隙在光伏应用的最佳范围之外采用值。

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