Department of Chemistry, Brookhaven National Laboratory, Upton, New York 11973, USA.
J Chem Phys. 2010 Mar 14;132(10):104703. doi: 10.1063/1.3337918.
The structural and electronic properties of CeO(x) species supported on the rutile TiO(2)(110) surface have been examined by means of periodic density-functional calculations that use a generalized gradient approximation functional including a Hubbard-like type correction. Deposition of Ce atoms leads in a first step to Ce(3+) ions bound to the surface through bridge and in-plane oxygen atoms, the released electrons occupying the Ti 3d empty orbitals. Further addition of Ce and molecular oxygen gives place to Ce(2)O(3) dimers diagonally arranged on the surface, in agreement with the spots observed in the scanning tunnel microscope images. The formation process of CeO(x) nanoparticles (NPs) on the TiO(2) surface is highly exothermic and our calculations show that the redox properties of the Ce(III)-Ce(IV) couple are significantly altered when it is supported on TiO(2). In particular the reactivity against CO/O(2) indicates that on the surface the presence of Ce(III) is favored over Ce(IV) species. Our results also indicate that the CeO(x)/TiO(2) interface should be seen like a real mixed-metal oxide rather than a supported NP of ceria. Finally, in the context of the high catalytic activity of the M/CeO(x)/TiO(2) (M=Au,Cu,Pt) systems in the water-gas shift reaction, we have examined the dissociation of water on the CeO(x)/TiO(2) surface and estimated a barrier as small as 0.04 eV, i.e. approximately 8 times smaller than that computed for a TiO(2) oxygen vacancy. This result agrees with the experimental superior catalytic activity of the M/CeO(x)/TiO(2) systems over M/TiO(2).
采用包含 Hubbard 型修正的广义梯度近似泛函,通过周期性密度泛函计算研究了负载在金红石 TiO(2)(110)表面的 CeO(x)物种的结构和电子特性。Ce 原子的沉积首先导致通过桥和平面氧原子结合到表面的 Ce(3+)离子,释放的电子占据 Ti 3d 空轨道。进一步添加 Ce 和分子氧会在表面上形成对角排列的 Ce(2)O(3)二聚体,这与扫描隧道显微镜图像中观察到的斑点一致。CeO(x)纳米颗粒 (NPs) 在 TiO(2)表面上的形成过程是高度放热的,我们的计算表明,Ce(III)-Ce(IV) 偶对的氧化还原性质在负载到 TiO(2)上时会发生显著改变。特别是对 CO/O(2)的反应性表明,在表面上 Ce(III)的存在优先于 Ce(IV)物种。我们的结果还表明,CeO(x)/TiO(2) 界面应该被视为一种真正的混合金属氧化物,而不是氧化铈的负载 NP。最后,在 M/CeO(x)/TiO(2) (M=Au、Cu、Pt) 体系在水汽变换反应中具有高催化活性的背景下,我们研究了水在 CeO(x)/TiO(2)表面上的解离,并估计了一个小至 0.04 eV 的势垒,即大约比计算出的 TiO(2)氧空位小 8 倍。这一结果与 M/CeO(x)/TiO(2) 体系在 M/TiO(2)上具有优越的催化活性的实验结果一致。