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Dual promotional effect of CuxO clusters grown with atomic layer deposition on TiO2 for photocatalytic hydrogen production

机译:Cuxo簇的双重促销效应在TiO2上生长,用于光催化氢的产生

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The promotional effects on photocatalytic hydrogen production of CuxO clusters deposited using atomic layer deposition (ALD) on P25 TiO2 are presented. The structural and surface chemistry study of CuxO/TiO2 samples, along with first principles density functional theory simulations, reveal the strong interaction of ALD deposited CuxO with TiO2, leading to the stabilization of CuxO clusters on the surface; it also demonstrated substantial reduction of Ti4+ to Ti3+ on the surface of CuxO/TiO2 samples after CuxO ALD. The CuxO/TiO2 photocatalysts showed remarkable improvement in hydrogen productivity, with 11 times greater hydrogen production for the optimum sample compared to unmodified P25. With the combination of the hydrogen production data and characterization of CuxO/TiO2 photocatalysts, we inferred that ALD deposited CuxO clusters have a dual promotional effect: increased charge carrier separation and improved light absorption, consistent with known copper promoted TiO2 photocatalysts and generation of a substantial amount of surface Ti3+ which results in self-doping of TiO2 and improves its photo-activity for hydrogen production. The obtained data were also employed to modify the previously proposed expanding photocatalytic area and overlap model to describe the effect of cocatalyst size and weight loading on photocatalyst activity. Comparing the trend of surface Ti3+ content increase and the photocatalytically promoted area, calculated with our model, suggests that the depletion zone formed around the heterojunction of CuxO–TiO2 is the main active area for hydrogen production, and the hydrogen productivity of the photocatalyst depends on the surface coverage by this active area. However, the overlap of these areas suppresses the activity of the photocatalyst.
机译:提出了对使用原子层沉积(ALD)在P25 TIO2上沉积的Cuxo簇的光催化氢产生的促销作用。 Cuxo/TiO2样品的结构和表面化学研究以及第一原理密度函数理论模拟揭示了ALD沉积Cuxo与TiO2的强烈相互作用,从而导致表面Cuxo簇的稳定。它还证明了Cuxo ALD后Cuxo/TiO2样品表面上Ti4+的Ti3+大幅降低。与未修饰的P25相比,Cuxo/TiO2光催化剂的氢生产率显示出显着提高,最佳样品的氢产生增长了11倍。与Cuxo/TiO2光催化剂的氢生产数据和表征的结合,我们推断出ALD沉积的Cuxo簇具有双重促销效果:增加荷载体分离和改善的光吸收,与已知的Copper促进Tio2光催化剂并产生实质性的Tio2光催化剂,并产生表面Ti3+的量会导致TiO2自兴奋剂,并提高了其光活性为氢生产。还采用了所获得的数据来修改先前提出的扩展光催化区域和重叠模型,以描述环催化剂大小和重量负荷对光催化剂活性的影响。比较表面Ti3+含量增加的趋势,并通过我们的模型计算的光催化促进的面积表明,Cuxo – Tio2的异质结周围形成的耗竭区是氢生产的主要活性区域,并且光催化剂的氢生产力取决于光催化剂的生产力。该活动区域的表面覆盖范围。但是,这些区域的重叠抑制了光催化剂的活性。

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