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表面钒氧化物形态的定量测定及其催化活性

Quantitative determination of the speciation of surface vanadium oxides and their catalytic activity.

作者信息

Tian Hanjing, Ross Elizabeth I, Wachs Israel E

机构信息

Operando Molecular Spectroscopy and Catalysis Laboratory, Department of Chemical Engineering, 111 Research Drive, Iacocca Hall, Lehigh University, Bethlehem, PA 18015, USA.

出版信息

J Phys Chem B. 2006 May 18;110(19):9593-600. doi: 10.1021/jp055767y.

Abstract

A quantitative method based on UV-vis diffuse reflectance spectroscopy (DRS) was developed that allows determination of the fraction of monomeric and polymeric VO(x) species that are present in vanadate materials. This new quantitative method allows determination of the distribution of monomeric and polymeric surface VO(x) species present in dehydrated supported V(2)O(5)/SiO(2), V(2)O(5)/Al(2)O(3), and V(2)O(5)/ZrO(2) catalysts below monolayer surface coverage when V(2)O(5) nanoparticles are not present. Isolated surface VO(x) species are exclusively present at low surface vanadia coverage on all the dehydrated oxide supports. However, polymeric surface VO(x) species are also present on the dehydrated Al(2)O(3) and ZrO(2) supports at intermediate surface coverage and the polymeric chains are the dominant surface vanadia species at monolayer surface coverage. The propane oxidative dehydrogenation (ODH) turnover frequency (TOF) values are essentially indistinguishable for the isolated and polymeric surface VO(x) species on the same oxide support, and are also not affected by the Brønsted acidity or reducibility of the surface VO(x) species. The propane ODH TOF, however, varies by more than an order of magnitude with the specific oxide support (ZrO(2) > Al(2)O(3) >> SiO(2)) for both the isolated and polymeric surface VO(x) species. These new findings reveal that the support cation is a potent ligand that directly influences the reactivity of the bridging V-O-support bond, the catalytic active site, by controlling its basic character with the support electronegativity. These new fundamental insights about polymerization extent of surface vanadia species on SiO(2), Al(2)O(3), and ZrO(2) are also applicable to other supported vanadia catalysts (e.g., CeO(2), TiO(2), Nb(2)O(5)) as well as other supported metal oxide (e.g., CrO(3), MoO(3), WO(3)) catalyst systems.

摘要

开发了一种基于紫外可见漫反射光谱(DRS)的定量方法,该方法可用于测定钒酸盐材料中单体和聚合态VO(x)物种的比例。这种新的定量方法能够确定在不存在V2O5纳米颗粒的情况下,脱水负载型V2O5/SiO2、V2O5/Al2O3和V2O5/ZrO2催化剂中,低于单层表面覆盖度时单体和聚合态表面VO(x)物种的分布情况。在所有脱水氧化物载体上,低表面钒覆盖度时仅存在孤立的表面VO(x)物种。然而,在脱水的Al2O3和ZrO2载体上,中等表面覆盖度时也存在聚合态表面VO(x)物种,且在单层表面覆盖度时,聚合链是主要的表面钒物种。对于相同氧化物载体上的孤立和聚合态表面VO(x)物种,丙烷氧化脱氢(ODH)的周转频率(TOF)值基本无法区分,并且也不受表面VO(x)物种的布朗斯特酸度或还原性的影响。然而,对于孤立和聚合态表面VO(x)物种,丙烷ODH的TOF随特定氧化物载体(ZrO2 > Al2O3 >> SiO2)变化超过一个数量级。这些新发现表明,载体阳离子是一种有效的配体,通过利用载体电负性控制其碱性,直接影响桥连V-O-载体键(催化活性位点)的反应性。这些关于SiO2、Al2O3和ZrO2上表面钒物种聚合程度的新的基本见解也适用于其他负载型钒催化剂(如CeO2、TiO2、Nb2O5)以及其他负载型金属氧化物(如CrO3、MoO3、WO3)催化剂体系。

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