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Boosted CO2 photoreduction to methane via Co doping in bismuth vanadate atomic layers

机译:通过公司提高了甲烷二氧化碳光致还原作用掺杂的钒酸铋原子层

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摘要

CO2 photoreduction to valuable hydrocarbons is attractive and promising. Nevertheless, the photoactivity has been pretty low to date, and deeper insights into improving CO2 conversion efficiency remain a challenge. Here, BiVO4 atomic layers have been synthesized as ideal platforms to investigate the correlation between the electronic structures and activities for CO2 photoreduction. Cobalt (Co) is then deliberately doped in BiVO4 atomic layers to adjust the electronic structures. XPS analysis, CO2 TPD and electrochemical experiments indicate that Co doping makes the electron densities around O anions increase, which could likely facilitate CO2 activation and electron transfer to CO2 molecules, while photoelectrochemical and photocatalytic oxygen evolution experiments demonstrate that Co doping could also promote water oxidation reactions. Further investigations by density functional theory calculation reveal that Co doping results in the generation of new defect levels above the Fermi level, inferring that a higher hole concentration is favorable for water oxidation, and the doped Co 3d orbits located at the top of valence bands might serve as active centers for water oxidation. As a result, Co-doped BiVO4 atomic layers achieve an efficient and stable CH4 production rate of 23.8 mol g(-1) h(-1) under atmospheric CO2 concentration (400 ppm), which is about three times the activity of pristine BiVO4 atomic layers. This work might help to gain deeper insights into the design of CO2 photoreduction catalysts.
机译:二氧化碳的光致还原作用价值的碳氢化合物有吸引力,有前途。光敏迄今一直很低深入理解提高二氧化碳转换效率仍然是一个挑战。层被合成为理想的平台调查之间的相关性电子结构和活动二氧化碳光致还原作用。在BiVO4掺杂原子层来调整电子结构。电化学实验表明,有限公司掺杂使O周围的电子密度离子增加,这可能促进二氧化碳的活化和电子转移二氧化碳分子,而光电化学和光催化氧进化实验证明Co掺杂也可以促进水氧化反应。通过密度泛函理论计算, Co掺杂在一代的新结果缺陷级别高于费米能级,推断浓度较高的孔是有利的水氧化,掺杂有限公司3 d轨道位于价带顶部的可能作为水氧化的活性中心。因此,Co-doped BiVO4原子层实现高效和稳定的甲烷产率为23.8摩尔g (1) h(1)在大气中的二氧化碳浓度(400 ppm),这部电影讲的是三个次活动的原始BiVO4原子层。对二氧化碳的光致还原作用的设计催化剂。

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