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Facet-Dependent Catalytic Activity of Platinum Nanocrystals for Triiodide Reduction in Dye-Sensitized Solar Cells

机译:染料敏化太阳能电池中铂纳米晶体对三碘化物还原的刻面依赖性催化活性

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摘要

Platinum (Pt) nanocrystals have demonstrated to be an effective catalyst in many heterogeneous catalytic processes. However, pioneer facets with highest activity have been reported differently for various reaction systems. Although Pt has been the most important counter electrode material for dye-sensitized solar cells (DSCs), suitable atomic arrangement on the exposed crystal facet of Pt for triiodide reduction is still inexplicable. Using density functional theory, we have investigated the catalytic reaction processes of triiodide reduction over {100}, {111} and {411} facets, indicating that the activity follows the order of Pt(111) > Pt(411) > Pt(100). Further, Pt nanocrystals mainly bounded by {100}, {111} and {411} facets were synthesized and used as counter electrode materials for DSCs. The highest photovoltaic conversion efficiency of Pt(111) in DSCs confirms the predictions of the theoretical study. These findings have deepened the understanding of the mechanism of triiodide reduction at Pt surfaces and further screened the best facet for DSCs successfully.
机译:铂(Pt)纳米晶体已被证明是许多异质催化过程中的有效催化剂。但是,对于各种反应系统,具有最高活性的先锋面的报道有所不同。尽管Pt是用于染料敏化太阳能电池(DSC)的最重要的对电极材料,但仍难以解释在Pt裸露的晶面上适当的原子排列以还原三碘化物。使用密度泛函理论,我们研究了三碘化物在{100},{111}和{411}面上的催化反应过程,表明其活性遵循Pt(111)> Pt(411)> Pt(100)的顺序。 )。此外,合成了主要以{100},{111}和{411}面为界的Pt纳米晶体,并将其用作DSC的对电极材料。 DSC中Pt(111)的最高光电转换效率证实了理论研究的预测。这些发现加深了对Pt表面三碘化物还原机理的了解,并进一步成功筛选了DSC的最佳方面。

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