van de Water Leon G A, Bergwerff Jaap A, Leliveld Bob R G, Weckhuysen Bert M, de Jong Krijn P
Department of Inorganic Chemistry and Catalysis, Debye Institute, Utrecht University, Sorbonnelaan 16 3508 TB Utrecht, The Netherlands.
J Phys Chem B. 2005 Aug 4;109(30):14513-22. doi: 10.1021/jp051037e.
Spatially resolved Raman and UV-vis-NIR microspectroscopy have been used as tools to study the preparation process of supported catalyst bodies. Detailed spectroscopic information on the local coordination geometry of two different metallic species along with their macro-distribution over the catalyst body has been obtained, enabling a good understanding of the physicochemical processes occurring during the drying process of impregnated gamma-Al(2)O(3) bodies. The formation and decomposition of the Keggin-type complex H(x)PMo(11)CoO(40)((7-)(x)-), which is considered to be a potential precursor for CoMoS(2)/gamma-Al(2)O(3) HDS catalysts, inside gamma-Al(2)O(3) bodies is shown to be a function of the composition of the impregnation solutions, the aging time, and the drying conditions applied. This knowledge has been successfully applied to prepare samples with a well-defined distribution of the bimetallic complex, that is, either egg-shell, egg-yolk, or homogeneous distributions. The Raman results are presented in a semiquantitative way by subtraction of a reference spectrum of a sample containing a known amount of H(x)PMo(11)CoO(40)((7-)(x)-) from the spectra recorded along the cross-section of the catalyst bodies.
空间分辨拉曼光谱和紫外-可见-近红外光谱已被用作研究负载型催化剂体的制备过程的工具。已获得了关于两种不同金属物种的局部配位几何结构及其在催化剂体上的宏观分布的详细光谱信息,这有助于深入了解浸渍γ-Al(2)O(3)体干燥过程中发生的物理化学过程。结果表明,γ-Al(2)O(3)体内Keggin型配合物H(x)PMo(11)CoO(40)((7-)(x)-)的形成和分解是浸渍溶液组成、老化时间和干燥条件的函数,该配合物被认为是CoMoS(2)/γ-Al(2)O(3)加氢脱硫催化剂的潜在前体。这一知识已成功应用于制备具有明确双金属配合物分布的样品,即蛋壳型、蛋黄型或均匀分布。通过从沿催化剂体横截面记录的光谱中减去含有已知量H(x)PMo(11)CoO(40)((7-)(x)-)的样品的参考光谱,以半定量方式呈现拉曼结果。