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The Consequences of Kesterite Equilibria for Efficient Solar Cells

机译:高效太阳能电池中钾长石平衡的后果

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摘要

Copper-zinc-tin-chalcogenide kesterites, Cu_2ZnSnS_4 and Cu_2ZnSnSe_4 (CZTS(e)) are ideal candidates for the production of thin film solar cells on large scales due to the high natural abundance of all constituents, a tunable direct band gap ranging from 1.0 to 1.5 eV, a large absorption coefficient, and demonstrated power conversion efficiencies close to 10%. However, Sn losses through desorption of SnS(e) from CZTS(e) at elevated temperatures (above 400 °C)_(2-5) impede the thorough control of film composition and film homogeneity. No robust and feasible fabrication process is currently available. Here we show that understanding the formation reaction of the kesterite absorber is the key to control the growth process and to drastically improve the solar cell efficiency. Furthermore, we demonstrate that this knowledge can be used to simplify the four-dimensional parameter space (spanned by the four different elements) to an easy and robust two-dimensional process. Sufficiently high partial pressures of SnS(e) and S(e) (a) prevent the decomposition reaction of the CZTS(e) at elevated temperatures and (b) introduce any missing Sn into a Sn-deficient film. This finding enables us to simplify the precursor to a film containing only Cu and Zn, whereas Sn and S(e) are introduced from the gas phase by a self-regulating process.
机译:铜-锌-锡-硫族化物型铜锌矿,Cu_2ZnSnS_4和Cu_2ZnSnSe_4(CZTS(e))由于所有成分的自然丰度高,可调节的直接带隙为1.0,是大规模生产薄膜太阳能电池的理想选择到1.5 eV,吸收系数大,并且功率转换效率接近10%。但是,在高温(高于400°C)_(2-5)下,SnS(e)从CZTS(e)中解吸出来的Sn损失阻碍了对膜组成和膜均匀性的彻底控制。当前没有鲁棒且可行的制造工艺。在这里,我们表明,了解钾钛矿吸收剂的形成反应是控制生长过程并大幅提高太阳能电池效率的关键。此外,我们证明了该知识可用于将二维参数空间(由四个不同元素所覆盖)简化为一个简单而强大的二维过程。 SnS(e)和S(e)的分压足够高(a)阻止了CZTS(e)在高温下的分解反应,并且(b)将任何缺失的Sn引入到Sn不足的薄膜中。这一发现使我们能够简化仅包含Cu和Zn的薄膜的前体,而Sn和S(e)是通过自调节过程从气相引入的。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2011年第10期|p.3320-3323|共4页
  • 作者单位

    University of Luxembourg, Laboratory for Photovoltaics, 41, rue du Brill, L-4422 Belvaux, Luxembourg;

    University of Luxembourg, Laboratory for Photovoltaics, 41, rue du Brill, L-4422 Belvaux, Luxembourg;

    University of Luxembourg, Laboratory for Photovoltaics, 41, rue du Brill, L-4422 Belvaux, Luxembourg;

    University of Luxembourg, Laboratory for Photovoltaics, 41, rue du Brill, L-4422 Belvaux, Luxembourg;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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