首页> 外文期刊>Journal of the American Chemical Society >Mechanism of Photocatalytic Water Splitting in TiO_2. Reaction of Water with Photoholes, Importance of Charge Carrier Dynamics, and Evidence for Four-Hole Chemistry
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Mechanism of Photocatalytic Water Splitting in TiO_2. Reaction of Water with Photoholes, Importance of Charge Carrier Dynamics, and Evidence for Four-Hole Chemistry

机译:TiO_2中光催化水分解的机理水与光孔的反应,电荷载流子动力学的重要性以及四孔化学的证据

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We show for the first time that the photogenerated hole lifetime in TiO_2 is a strong determinant of the ability of TiO_2 to split water. Hole lifetimes were measured using transient absorption spectroscopy over a range of excitation intensities. The lifetimes of the holes were modulated by the use of exogenous scavengers and were also found to vary systematically with the excitation intensity. In all cases the quantum yield of oxygen production is found to be linked to the light intensity used, ranging from below 1 sun equivalent to nearly 1 sun equivalent. We also provide evidence that oxygen production requires four photons for each molecule of oxygen, which is reminiscent of the natural photosynthetic water-splitting mechanism. This in turn suggests a mechanism for oxygen production which requires four-hole chemistry, presumably via three, as yet unidentified intermediates. It is also shown that at excitation densities on the order of 1 sun, nongeminate electron-hole recombination limits the quantum yield significantly.
机译:我们首次表明,TiO_2中的光生空穴寿命是TiO_2分解水的能力的强大决定因素。使用瞬态吸收光谱法在一定激发强度范围内测量空穴寿命。空穴的寿命通过使用外源清除剂调节,并且还发现其随激发强度而系统地变化。在所有情况下,都发现氧气产生的量子产率与所使用的光强度相关,范围从低于1个太阳当量到接近1个太阳当量。我们还提供证据表明,氧气的产生需要为每个氧气分子提供四个光子,这让人想起自然的光合水分解机理。这反过来提示了一种产生氧气的机理,该机理需要四孔化学反应,大概是通过三个尚未确定的中间体。还表明,在激发密度为1个太阳的数量级时,未成对的电子-空穴复合显着限制了量子产率。

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