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首页> 外文期刊>ACS applied materials & interfaces >Catalytic Multilayers for Efficient Solar Water Oxidation through Catalyst Loading and Surface-State Passivation of BiVO4 Photoanodes
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Catalytic Multilayers for Efficient Solar Water Oxidation through Catalyst Loading and Surface-State Passivation of BiVO4 Photoanodes

机译:通过催化剂负载和Bivo4光桥的高效太阳能氧化催化多层氧化

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摘要

We studied the kinetics of photoelectrochemical (PEC) water oxidation using a model photoanode BiVO4 modified with various water oxidation catalysts (WOCs) by electrochemical impedance spectroscopy. In particular, we prepared BiVO4 photoanodes with catalytic multilayers (CMs), where cationic polyelectrolytes and anionic polyoxometalate (POM) WOCs were assembled in a desired amount at a nanoscale precision, and compared their performance with those with well-known WOCs such as cobalt phosphate (CoPi) and NiOOH. Our comparative kinetics analysis suggested that the deposition of the CMs improved the kinetics of both the photogenerated charge carrier separation/transport in bulk BiVO4 due to passivation of surface recombination centers and water oxidation at the electrode/electrolyte interface due to deposition of efficient molecular WOCs. On the contrary, the conventional WOCs were mostly effective in the former and less effective in the latter, which is consistent with previous reports. These findings explain why the CMs exhibit an outstanding performance. We also found that separated charge carriers can be efficiently transported to POM WOCs via a hopping mechanism due to the delicate architecture of the CMs, which is reminiscent of natural photosynthetic systems. We believe that this study can not only broaden our understanding on the underlying mechanism of PEC water oxidation but also provide insights for the design and fabrication of novel electrochemical and PEC devices, including efficient water oxidation photoanodes.
机译:通过电化学阻抗光谱通过用各种水氧化催化剂(WOC)改性的模型光电沸秒Bivo4研究了光电化学(PEC)水氧化的动力学。特别是,我们使用催化多层(CMS)制备了Bivo4光电池,其中阳离子聚电解质和阴离子聚毒液酸盐(POM)WOC以纳米级精度组装成所需量,并将其性能与具有众所周知的WOC(如磷酸盐)的性能进行比较。 (COPI)和NIOOH。我们的比较动力学分析表明,CMS的沉积由于电极/电解质界面在电极/电解质界面的钝化而改善了散装体BIVO4中的光发化电荷载流子分离/运输的动力学由于高效分子WOC的沉积而导致的电极/电解质界面的水氧化。相反,传统的WOC在前者和后者的效果较低,与之前的报道一致。这些调查结果解释了为什么CMS表现出出色的性能。我们还发现,由于CMS的微妙架构,可以通过跳跃机制将分离的电荷载波有效地运输到POM WOC,这使得具有自然光合系统。我们认为这项研究不仅可以扩大我们对PEC水氧化的潜在机制的理解,而且还提供了新型电化学和PEC器件的设计和制造的见解,包括有效的水氧化光阳极。

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