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首页> 外文期刊>ACS applied materials & interfaces >Improving Carrier-Transport Properties of CZTS by Mg Incorporation with Spray Pyrolysis
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Improving Carrier-Transport Properties of CZTS by Mg Incorporation with Spray Pyrolysis

机译:用喷雾热解掺入CZTS的载体转运性能

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High nonradiative recombination, low diffusion length and band tailing are often associated with a large open circuit voltage deficit, which results in low efficiency of Cu2ZnSnS4 (CZTS) solar cells. Recently, cation substitution in CZTS has gained interest as a plausible solution to suppress these issues. However, the common substitutes, Ag and Cd, are not ideal due to their scarcity and toxicity. Other transition-metal candidates (e.g., Mn, Fe, Co, or Ni) are multivalent, which may form harmful deep-level defects. Magnesium, as one of the viable substitutes, does not have these issues, as it is very stable in +2 oxidation state, abundant, and nontoxic. In this study, we investigate the effect of Mg incorporation in sulfur-based Cu2ZnSnS4 to form Cu2MgxZn1-xSnS4 by varying x from 0.0 to 1.0. These films were fabricated by chemical spray pyrolysis and the subsequent sulfurization process. At a high Mg content, it is found that Mg does not replace Zn to form a quaternary compound, which leads to the appearance of the secondary phases in the sample. However, a low Mg content (Cu2Mg0.05Zn0.95SnS4) improves the power conversion efficiency from 5.10% (CZTS) to 6.73%. The improvement is correlated to the better carrier-transport properties, as shown by a lesser amount of the ZnS secondary phase, higher carrier mobility, and shallower acceptor defects level. In addition, the Cu2Mg0.05Zn0.95SnS4 device also shows better charge-collection property based on the higher fill factor and quantum efficiency despite having lower depletion width. Therefore, we believe that the addition of a small amount of Mg is another viable route to improve the performance of the CZTS solar cell.
机译:高的非散射重组,低扩散长度和带拖尾通常与大开关电压缺陷相关联,这导致Cu2zNSN4(CZTS)太阳能电池的低效率。最近,CINTS中的阳离子替代使利益作为抑制这些问题的合理解决方案。然而,由于它们的稀缺和毒性,常见的替代品,AG和CD并不理想。其他过渡金属候选物(例如,Mn,Fe,Co或Ni)是多价的,可以形成有害的深层缺陷。镁作为可行的替代品之一,没有这些问题,因为它在+ 2氧化态,丰富和无毒中非常稳定。在这项研究中,我们研究MG掺入在硫基Cu2ZnSNS4中的影响,通过改变0.0至1.0来形成Cu 2MgxZn1-Xsns4。这些薄膜通过化学喷雾热解和随后的硫化过程制造。在高Mg含量下,发现Mg不替代Zn以形成季化合物,这导致样品中的二次相的外观。然而,低Mg含量(Cu2mg0.05Zn0.95SNS4)将功率转换效率从5.10%(CZT)提高至6.73%。改善与更好的载流性能相关,如诸如较多的ZnS二次相,载流动迁移率和较浅的受体缺陷水平所示。此外,尽管耗尽宽度较低,Cu2mg0.05Zn0.95SNS4装置还基于更高的填充因子和量子效率显示更好的充电收集性能。因此,我们认为添加少量Mg是改善CZTS太阳能电池性能的另一种可行的途径。

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