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首页> 外文期刊>Applied Catalysis, A. General: An International Journal Devoted to Catalytic Science and Its Applications >Reactivity of metal oxide nanocluster modified rutile and anatase TiO2: Oxygen vacancy formation and CO2 interaction
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Reactivity of metal oxide nanocluster modified rutile and anatase TiO2: Oxygen vacancy formation and CO2 interaction

机译:金属氧化物纳米簇修饰金红石和锐钛矿型TiO2的反应性:氧空位形成和CO2相互作用

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The reduction of CO2 to fuels is an active research topic with much interest in using solar radiation and photocatalysts to transform CO2 into higher value chemicals. However, to date there are no photocatalysts known that can use solar radiation to efficiently reduce CO2. One particularly difficult problem is activating CO2 due to its high stability. In this paper we use density functional theory simulations to study novel surface modified TiO2 composites, based on modifying rutile and anatase TiO2 with molecular-sized metal oxide nanoclusters of SnO, ZrO2 and CeO2 and the interaction between CO2 and nanocluster-modified TiO2. We show that reduction of the supported nanocluster is favourable which then provides reduced cations and sites for CO2 adsorption. The atomic structures and energies of different adsorption configurations of CO2 on the reduced modified TiO2 composites are studied. Generally on reduced SnO and CeO2 nanoclusters, the interaction of CO2 is weak producing adsorbed carbonates. On reduced ZrO2, we find a stronger interaction with CO2 and carbonate formation. The role of the energies of oxygen vacancy formation in CO2 adsorption is important because if reduction is too favourable, the interaction with CO2 is not so favourable. We do find an adsorption configuration of CO2 at reduced CeO2 where a C-O bond breaks, releasing CO and filling the oxygen vacancy site in the supported ceria nanocluster. These initial results for the interaction of CO2 at surface modified TiO2 provide important insights for future work on CO2 reduction using novel materials. (C) 2015 Elsevier B.V. All rights reserved.
机译:减少燃料中的CO2是一个活跃的研究主题,它对使用太阳辐射和光催化剂将CO2转化为更高价值的化学品非常感兴趣。然而,迄今为止,还没有光催化剂可以利用太阳辐射有效地减少二氧化碳。一个特别困难的问题是由于二氧化碳的高稳定性而使其活化。在本文中,我们使用密度泛函理论模拟来研究新型表面改性的TiO2复合材料,其基础是使用SnO,ZrO2和CeO2分子大小的金属氧化物纳米簇修饰金红石和锐钛矿型TiO2,以及CO2与纳米簇修饰的TiO2之间的相互作用。我们表明,减少负载的纳米簇是有利的,然后提供减少的阳离子和CO2吸附位点。研究了还原改性TiO2复合材料上CO2不同吸附构型的原子结构和能量。通常,在还原的SnO和CeO2纳米团簇上,CO2的相互作用较弱,产生吸附的碳酸盐。在还原的ZrO2上,我们发现与CO2和碳酸盐形成的相互作用更强。氧空位形成的能量在CO2吸附中的作用很重要,因为如果还原太有利,与CO2的相互作用就不会那么有利。我们确实在还原的CeO2处发现了CO2的吸附构型,其中C-O键断裂,释放出CO并填充了负载的二氧化铈纳米簇中的氧空位。这些表面改性的TiO2与CO2相互作用的初步结果为使用新型材料减少CO2的未来工作提供了重要的见识。 (C)2015 Elsevier B.V.保留所有权利。

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