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基于柔性轻质钼箔衬底的8%效率铜锌锡硫硒(CZTSSe)薄膜太阳能电池。

8% Efficiency CuZnSn(S,Se) (CZTSSe) Thin Film Solar Cells on Flexible and Lightweight Molybdenum Foil Substrates.

作者信息

Jo Eunae, Gang Myeng Gil, Shim Hongjae, Suryawanshi Mahesh P, Ghorpade Uma V, Kim Jin Hyeok

机构信息

Department of Materials Science and Engineering and Optoelectronics Convergence Research Center , Chonnam National University , 77 Yongbong-Ro , Buk-Gu, Gwangju 61186 , South Korea.

出版信息

ACS Appl Mater Interfaces. 2019 Jul 3;11(26):23118-23124. doi: 10.1021/acsami.9b03195. Epub 2019 Jun 19.

Abstract

The use of flexible and highly conducting molybdenum (Mo) foil as a substrate offers several advantages such as a high thermal stability, smooth surface, and chemical inertness for the fabrication of high-efficiency thin film solar cells (TFSCs) by lowering the manufacturing costs. Here, we report a record preliminary efficiency of ∼8% for sputtered-grown CuZnSn(S,Se) (CZTSSe) TFSCs on flexible and lightweight Mo foils. Careful studies were focused on identifying the role of preparative parameters such as annealing temperature, absorber composition, and post-preparative optimization to bridge the obtained record efficiency of ∼8% to a previous record efficiency of 7.04% for Na-incorporated CZTSSe sputter-based TFSCs. Interestingly, the preliminary record efficiency of ∼8% for our CZTSSe device grown via a scalable sputtering method was achieved by optimizing the absorber quality and post-preparative device optimization. While our preliminary results with a record efficiency demonstrate the potential of sputtering method, there is much scope for further improvement in the device efficiency by thoroughly understanding alkali element doping in the absorber layer.

摘要

使用柔性且高导电性的钼(Mo)箔作为衬底具有诸多优势,例如热稳定性高、表面光滑以及化学惰性,这有助于通过降低制造成本制造高效薄膜太阳能电池(TFSC)。在此,我们报告了在柔性轻质Mo箔上溅射生长的铜锌锡硫硒(CZTSSe)薄膜太阳能电池的初步效率达到了约8%的创纪录水平。我们进行了细致研究,重点在于确定诸如退火温度、吸收层成分以及制备后优化等制备参数的作用,以便将所获得的约8%的创纪录效率提升至之前基于Na掺杂的CZTSSe溅射薄膜太阳能电池7.04%的纪录效率。有趣的是,通过优化吸收层质量和制备后器件优化,我们采用可扩展溅射方法生长的CZTSSe器件实现了约8%的初步创纪录效率。虽然我们创纪录效率的初步结果证明了溅射方法的潜力,但通过深入理解吸收层中的碱元素掺杂,器件效率仍有很大的提升空间。

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