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Composition Control and Formation Pathway of CZTS and CZTGS Nanocrystal Inks for Kesterite Solar Cells

机译:钾长石太阳能电池用CZTS和CZTGS纳米晶油墨的成分控制和形成途径

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The ability to reproducibly synthesize nanocrystal (NC) inks with precisely controlled compositions is essential for making efficient kesterite solar cells from NCs. Here we present the results of a study on Cu-Zn-Sn-S NCs in which different particle size fractions were collected over a range of reaction times from various starting reagents. From this we have determined the temporal evolution of the NC ink and identified at least two distinct particle populations that form following injection: large particles containing primarily Cu and Zn, and small particles of Cu and Sn. For short reaction times, the extreme compositional heterogeneity between these size fractions makes the average ink composition highly sensitive to changes in reaction time and precipitation procedure. Longer synthesis times produce more consistent inks, with higher yield, and compositions closer to that of the starting reagents. The choice of metal precursor was found to have a minor impact on the composition of the resulting ink compared to the changes with time, even when substituting Ge precursors for Sn precursors. Using this understanding, we demonstrate the ability to produce inks with targeted off-stoichiometric compositions.
机译:具有可控地合成成分的可重复合成纳米晶体(NC)油墨的能力对于从NC制备高效的硅藻土太阳能电池至关重要。在这里,我们介绍了对Cu-Zn-Sn-S NCs的研究结果,其中在各种反应时间范围内,从各种起始试剂中收集了不同的粒径分数。据此,我们确定了NC墨水的时间演变,并确定了注射后形成的至少两个不同的粒子群:主要包含Cu和Zn的大粒子,以及Cu和Sn的小粒子。对于较短的反应时间,这些尺寸分数之间的极端成分异质性使平均油墨成分对反应时间和沉淀过程的变化高度敏感。更长的合成时间可产生更一致的油墨,产率更高,并且组成更接近起始试剂。发现金属前体的选择与所产生的油墨的组成相比随时间的变化具有很小的影响,即使用Ge前体代替Sn前体也是如此。利用这种理解,我们证明了生产具有目标非化学计量组成的油墨的能力。

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