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首页> 外文期刊>Electrochimica Acta >Cuprous Sulfide@Carbon nanostructures based counter electrodes with cadmium sulfide/titania photoanode for liquid junction solar cells
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Cuprous Sulfide@Carbon nanostructures based counter electrodes with cadmium sulfide/titania photoanode for liquid junction solar cells

机译:基于硫化镉的硫化铜/碳纳米结构,具有硫化镉/二氧化钛光电液的计数器电池

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The counter electrode (CE) is an integral component of a quantum dot sensitized solar cell (QDSSC), for it catalyzes the electrolyte reduction during cell operation. CEs: copper sulfide (Cu2S), Cu2S@graphene oxide (GO), Cu2S@reduced graphene oxide (RGO) and Cu2S@functionalized multiwalled carbon nanotubes (F-MWCNTs) except C-fabric are prepared. The five CEs are used in QDSSCs with a TiO2/CdS/ZnS film as the photoanode. The power conversion efficiencies (PCEs) of the cells are: Cu2S (4%), Cu2S@GO (5.69%), Cu2S@RGO (2.62%), Cu2S@F-MWCNTs (6.34%) and C-fabric (3.86%). Among these, the Cu2S@F-MWCNTs CE based QDSSC exhibits the highest PCE due to the high conductivity and high surface area of F-MWCNTs and the catalytic activity of Cu2S for sulfide reduction, which promotes electron transfer to the electrolyte. The Cu2S@F-MWCNTs CE shows a lower charge transfer resistance (Rct) for the oxidized sulfide species reduction, a better exchange current density and a higher current density for the electrolyte reduction at the CE/electrolyte interface compared to other CEs. F-MWCNTs also have a suitably poised Fermi level for accepting electrons with ease from the current collector. The same electrode also shows a higher catalytic activity and a greater flat band potential for hydrogen evolution reaction relative to the other electrodes. This study furnishes insights on how Cu2S@carbon nanostructures based electrodes are extremely effective as CEs for QDSSCs. (C) 2018 Elsevier Ltd. All rights reserved.
机译:对电极(CE)是量子点敏化太阳能电池(QDSSC)的整体分量,用于催化电池操作期间的电解质降低。 CES:制备除C-织物之外的硫化铜(Cu2s),Cu2S @石墨烯氧化物(GO),Cu2S @荧光氧化物(RGO)和Cu2S官能化多壁碳纳米管(F-MWCNT)。使用TiO2 / CDS / ZnS胶片作为PhotoNode的QDSSC,五个CES用于QDSSC。细胞的功率转换效率(PCE)是:Cu2s(4%),Cu2S @ Go(5.69%),Cu2S @ Rgo(2.62%),Cu2S @ F-MWCNT(6.34%)和C-Fabric(3.86% )。其中,Ce的基于Ce的QDSSC由于F-MWCNT的高导电性和高表面积以及Cu2s的催化活性来表现出最高的PCE,以及​​用于硫化物还原的Cu2s的催化活性,这促使电子转移到电解质。 CU2S @ F-MWCNTS CE显示出氧化硫化物物种的较低电荷转移电阻(RCT),与其他CE相比,Ce /电解质界面的电解质降低的更好的交换电流密度和更高的电流密度。 F-MWCNTS还具有适当的FERMI水平,可从集电器容易地接受电子。相同的电极还显示出较高的催化活性和相对于其他电极的氢进化反应的更大的扁平带电位。本研究提供了对CU2S @碳纳米结构的电极如何作为QDSSC的CES非常有效的洞察。 (c)2018年elestvier有限公司保留所有权利。

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