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Improving the efficiency of water splitting in dye-sensitized solar cells by using a biomimetic electron transfer mediator

机译:通过使用仿生电子转移介体提高染料敏化太阳能电池中水的分解效率

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摘要

Photoelectrochemical water splitting directly converts solar energy to chemical energy stored in hydrogen, a high energy density fuel. Although water splitting using semiconductor photoelectrodes has been studied for more than 40 years, it has only recently been demonstrated using dye-sensitized electrodes. The quantum yield for water splitting in these dye-based systems has, so far, been very low because the charge recombination reaction is faster than the catalytic four-electron oxidation of water to oxygen. We show here that the quantum yield is more than doubled by incorporating an electron transfer mediator that is mimetic of the tyrosine-histidine mediator in Photosystem II. The mediator molecule is covalently bound to the water oxidation catalyst, a colloidal iridium oxide particle, and is coadsorbed onto a porous titanium dioxide electrode with a Ruthenium polypyridyl sensitizer. As in the natural photosynthetic system, this molecule mediates electron transfer between a relatively slow metal oxide catalyst that oxidizes water on the millisecond timescale and a dye molecule that is oxidized in a fast light-induced electron transfer reaction. The presence of the mediator molecule in the system results in photoelectrochemical water splitting with an internal quantum efficiency of approximately 2.3% using blue light.
机译:光电化学水分解直接将太阳能转换成存储在氢中的化学能,氢是一种高能量密度的燃料。尽管使用半导体光电极进行水分解已经研究了40多年,但直到最近才使用染料敏化电极进行了证明。迄今为止,在这些基于染料的系统中,水分解的量子产率非常低,因为电荷重组反应比水催化四电子氧化为氧气的速度更快。我们在这里表明,通过掺入模拟光电系统II中酪氨酸-组氨酸介体的电子转移介体,量子产率提高了一倍以上。介体分子与水氧化催化剂,胶体氧化铱颗粒共价结合,并与钌聚吡啶基敏化剂共吸附在多孔二氧化钛电极上。就像在自然光合作用系统中一样,该分子介导在毫秒级时将水氧化的相对较慢的金属氧化物催化剂与在快速光诱导的电子转移反应中被氧化的染料分子之间的电子转移。系统中介体分子的存在导致使用蓝光的光电化学水分裂,其内部量子效率约为2.3%。

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