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首页> 外文期刊>ACS catalysis >Enhancing the Photoelectrochemical Water Oxidation Reaction of BiVO4 Photoanode by Employing Carbon Spheres as Electron Reservoirs
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Enhancing the Photoelectrochemical Water Oxidation Reaction of BiVO4 Photoanode by Employing Carbon Spheres as Electron Reservoirs

机译:通过用碳球作为电子储层来增强Bivo4光电陶器的光电化学水氧化反应

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摘要

The rate-determining step of the photoelectrochemical (PEC) water splitting is the water oxidation reaction at the photoanode, which is 4 orders of magnitude slower than the water reduction reaction at the photocathode. In a conventional process to accelerate the water oxidation, oxygen evolution cocatalysts (OECs) are usually used on the surface of a photoanode. As an alternative strategy, we considered employing a composite photoanode made up of a semiconductor and carbon spheres, for it is expected that the photogenerated electrons on the semiconductor particles can be captured by the carbon spheres as electron reservoirs and leave the photogenerated holes on the surface of the semiconductor particles, which promotes the effective separation of photogenerated electrons and holes. More importantly, the holes accumulated in the valence band accelerate the water oxidation reaction rate with the rapid release of electrons stored on the carbon sphere. Therefore, the composite photoanode achieves a higher photocurrent at a lower applied bias. We provide a proof of concept for this strategy by preparing a composite photoanode by combining bismuth vanadium oxide BiVO_(4) with carbon spheres and find that the resulting photoanode displays a remarkable enhancement in the rate of the photoanode water oxidation.
机译:光电化学(PEC)水分子的速率确定步骤是光透镜的水氧化反应,其比光电阴极处的水还原反应慢4个幅度。在加速水氧化的常规方法中,通常使用氧气进化助催化剂(OECs)在光电码的表面上。作为一种替代策略,我们考虑采用由半导体和碳球组成的复合光电码,预期可以通过碳球体作为电子储存器捕获上半导体颗粒上的光发化电子,并将光生孔留在表面上促进光生电子和孔的有效分离的半导体颗粒。更重要的是,在价带中积聚的孔随着存储在碳球上的快速释放而加速了水氧化反应速率。因此,复合光阳极在较低施加的偏压下实现更高的光电流。我们通过将复合氧化钒BIVO_(4)与碳球组合并发现所得的PhotoNode在光电沸秒的速率下显示出显着的增强来提供该策略的概念证据。

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