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Quantum dot sensitized titania for photo-fuel-cell and for water splitting operation in the presence of sacrificial agents

机译:用于牺牲燃料的量子点敏化二氧化钛,用于光燃料电池和水分解操作

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摘要

Photoelectrochemical cells have been constructed using quantum dot sensitized nanocrystalline titania photoanodes and were operated under photo-fuel-cell operation to produce electricity or water-splitting operation to produce hydrogen. In the first case, the cell functioned in the presence of an alkaline electrolyte using ethanol as fuei. The obtained data allowed to define the optimal thickness of the titania film, which was approximately 15 μm. Functional sensitizers were CdS or ZnSe combined with CdS. Small band gap quantum dot sensitizers like CdSe and PbS were not functional in photo-fuel-cells, owing to the limited oxidative power of their valence-band holes. For water-splitting operation, we mainly used a S~(2-)/SO3~(2-) electrolyte. In that case, panchromatic sensitization is possible. Thus the photoanode, which gave the highest hydrogen production rate, was constructed by combining TiO2/FTO with ZnS/CdSe/CdS quantum dots. Hydrogen was produced by applying an external bias of 0.5 V. In the absence of bias the quantity of hydrogen was very small. Hydrogen production rate was also very small in a purely alkaline environment with ethanol as fuel.
机译:已经使用量子点敏化的纳米晶二氧化钛光阳极构造了光电化学电池,并在光燃料电池操作下运行以产生电,或者在水分解操作下运行以产生氢。在第一种情况下,电池在使用乙醇作为燃料的碱性电解质存在下起作用。获得的数据允许限定二氧化钛膜的最佳厚度,其约为15μm。功能敏化剂为CdS或ZnSe与CdS结合。由于价带空穴的氧化能力有限,小带隙量子点敏化剂(如CdSe和PbS)在光燃料电池中不起作用。对于水分解操作,我们主要使用S〜(2-)/ SO3〜(2-)电解质。在那种情况下,全色敏化是可能的。因此,通过将TiO2 / FTO与ZnS / CdSe / CdS量子点结合在一起,可以制得产氢率最高的光电阳极。通过施加0.5 V的外部偏压可产生氢气。在没有偏压的情况下,氢气的数量非常少。在以乙醇为燃料的纯碱性环境中,氢气的生产率也很小。

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