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Interconnected molybdenum disulfide@tin disulfide heterojunctions with different morphologies: a type of enhanced counter electrode for dye-sensitized solar cells

机译:相互连接的钼二硫化锡(二硫化锡异质结不同):一种用于染料敏化太阳能电池的增强型对电极

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摘要

In this work, we successfully synthesized SnS2 nanoparticles, a hollowed-out netty MoS2 (nMoS(2)) nanostructure, a flower-like MoS2 (fMoS(2)) nanostructure, an nMoS(2)@SnS2 heterostructure, and an fMoS(2)@SnS2 heterostructure via a simple and facile hydrothermal process. We used powder X-ray diffractograms to verify purity and crystalline phases of the as-prepared samples. Additionally, the structures and morphologies of as-prepared components were checked by X-ray photoelectron spectroscopy analysis (XPS), transmission electron microscopy (TEM), and scanning electron microscopy (SEM). A dye-sensitized solar cell (DSSC) assembled with this original heterostructure as a counter electrode (CE) displayed a splendid power conversion efficiency (PCE) of 7.63% along with stable catalytic performance for triiodide reduction. This is better than other DSSCs including: SnS2 CE (6.67%), nMoS(2) CE (5.78%), fMoS(2) CE (5.37%), and fMoS(2)@SnS2 CE (7.08%). According to our experimental results, we believe that the outstanding performance of nMoS(2)@SnS2 heterostructures for a DSSC is because of their characteristic crystal structure, which may contribute to playing a heterogeneous and synergistic effect between the active materials, optimize dispersity of the samples, avoid recombination of electron-hole pairs to accelerate velocity of triiodide reduction, and enhance stability in a I-3(-)/I- electrolyte. Hence, the nMoS(2)@SnS2 heterostructure can play a better role in DSSCs with excellent performance and superior stability as an efficient CE.
机译:在这项工作中,我们成功地合成了SNS2纳米粒子,挖空的Netty MOS2(NMOS(2))纳米结构,花样MOS2(FMOS(2))纳米结构,NMOS(2)= SNS2异质结构和FMOS( 2)@ SNS2异质结构通过简单且容易的水热处理。我们使用粉末X射线衍射图来验证制备样品的纯度和结晶阶段。另外,通过X射线光电子能谱分析(XPS),透射电子显微镜(TEM)和扫描电子显微镜(SEM)检查用作制备组分的结构和形态。用该原始异质结构组装的染料敏化太阳能电池(DSSC)作为对电极(CE)显示出7.63%的辉煌功率转换效率(PCE),以及稳定的三碘化物降低催化性能。这比其他DSSC更好,包括:SNS2 CE(6.67%),NMOS(2)CE(5.78%),FMOS(2)CE(5.37%)和FMOS(2)@ SNS2 CE(7.08%)。根据我们的实验结果,我们认为DSSC的NMOS(2)@ SNS2异质结构的出色性能是因为它们的特征晶体结构,这可能有助于在活性材料之间发挥异质和协同效应,优化的分散性样品,避免电子 - 空穴对的重组以加速三碘化物降低的速度,并增强I-3( - )/ I-电解质中的稳定性。因此,NMOS(2)@ SNS2异质结构可以在DSSCS中发挥更好的作用,具有出色的性能和优异的稳定性,作为高效的CE。

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  • 来源
    《CrystEngComm》 |2018年第9期|共12页
  • 作者单位

    Anhui Univ Sch Phys &

    Mat Sci Hefei 230601 Anhui Peoples R China;

    Anhui Univ Sch Phys &

    Mat Sci Hefei 230601 Anhui Peoples R China;

    Anhui Univ Sch Phys &

    Mat Sci Hefei 230601 Anhui Peoples R China;

    Anhui Univ Sch Phys &

    Mat Sci Hefei 230601 Anhui Peoples R China;

    Anhui Univ Sch Phys &

    Mat Sci Hefei 230601 Anhui Peoples R China;

    Anhui Univ Sch Phys &

    Mat Sci Hefei 230601 Anhui Peoples R China;

    Anhui Univ Sch Phys &

    Mat Sci Hefei 230601 Anhui Peoples R China;

    Anhui Univ Sch Phys &

    Mat Sci Hefei 230601 Anhui Peoples R China;

    Anhui Univ Sch Phys &

    Mat Sci Hefei 230601 Anhui Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;晶体学;
  • 关键词

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