Structure of Co(II) Species Formed on the Surface of γ-Alumina Upon Interfacial Deposition

J. Vakros, K. Bourikas, C. Kordulis, A. Lycourghiotis
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引用次数: 1

Abstract

The mode of retention of Co(H 2 O) 6 2+ species at the "γ-alumina/aquatic solution" interface is refined using simulations, adsorption isotherm, potentiometric mass titrations and mainly proton - ion titrations jointly with diffuse reflectance spectroscopy. It was found that the increase in the Co(II) surface concentration affects considerably the kind of the Co(II) species deposited. Mononuclear/mono-substituted inner sphere Co(II) complexes are formed at extremely low Co(II) surface concentration. A mixed surface state involving mononuclear/mono-substituted and binuclear/bi-substituted Co(II) complexes is formed at relatively low Co(II) surface concentration. Only binuclear/bi-substituted Co(II) complexes are formed at intermediate Co(II) surface concentration. Finally, oligo-nuclear inner sphere Co(II) species are formed at relatively high Co(II) surface concentration, in addition to the bi-nuclear ones. The above species concern a range of surface Co(II) concentration extending from zero to 2.7 theoretical surface layers of (Co(H 2 O) 6 ) 2+ . The formation of Co(II) surface precipitate starts above these theoretical surface layers. The above indicates that one may control the surface Co(II) concentration, by adjusting the Co(II) concentration in the impregnating solution, and thus the Co(II) surface species formed. This control allows tailoring the preparation of cobalt catalysts supported on γ-alumina and thus the development of effective Co/γ-alumina catalysts.
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γ-氧化铝界面沉积过程中Co(II)的结构
利用模拟、吸附等温线、电位质量滴定和主要是质子-离子滴定等方法,结合漫反射光谱,对Co(h2o) 6.2 +在“γ-氧化铝/水溶液”界面的保留模式进行了改进。结果表明,Co(II)表面浓度的增加对沉积的Co(II)种类有较大影响。单核/单取代内球Co(II)配合物在极低的Co(II)表面浓度下形成。在相对较低的Co(II)表面浓度下,形成了单核/单取代和双核/双取代Co(II)配合物的混合表面态。只有双核/双取代的Co(II)配合物在中间Co(II)表面浓度下形成。最后,在相对高的Co(II)表面浓度下,除了双核Co(II)外,还形成了低核内球Co(II)物质。上述物种涉及的表面Co(II)浓度范围从0到2.7 (Co(h2o) 6) 2+的理论表面层。Co(II)表面沉淀的形成开始于这些理论表层之上。上述结果表明,可以通过调节浸渍液中的Co(II)浓度来控制表面Co(II)的浓度,从而形成Co(II)表面物质。这种控制可以定制γ-氧化铝支撑的钴催化剂的制备,从而开发有效的Co/γ-氧化铝催化剂。
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