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Performance and Characterization of ALD Vanadium Oxide Catalytic Nanoliths

机译:ALD钒氧化物催化纳米材料的性能与表征

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Supported vanadium oxide species are active catalysts for the selective, oxidative conversion of hydrocarbons to useful chemicals. Both the catalytic vanadium oxide and the supporting oxide were synthesized by ALD on high surface powders and anodic aluminum oxide (AAO) nanoliths. The nanoliths were prepared by anodic oxidation of aluminum. 1 nm of ALD aluminum oxide acts as the support for vanadium oxide loaded by 1 to 18 ALD cycles of vanadyltri-isopropoxide/H_2O_2. Ultraviolet-visible absorption edges red shift as the vanadia loading increases. The edge energy of 1-cycle ALD VOx corresponds to isolated, tetrahedral VO_4 in agreement with Raman spectroscopy. V-O-V bonds form with additional cycles producing a gradual increase in VOx domain size. Reaction rate coefficients for the oxidative dehydrogenation of cyclohexane show increased overall activity in the high loading catalysts but a higher specific activity in the low loading catalysts for cyclohexene formation.
机译:负载的钒氧化物是用于将烃选择性氧化转化为有用化学物质的活性催化剂。催化钒氧化物和载体氧化物均通过ALD在高表面粉末和阳极氧化铝(AAO)纳米片上合成。纳米片通过铝的阳极氧化制备。 1 nm的ALD氧化铝充当氧化钒的载体,该负载通过1到18个ALD循环的钒-异丙氧基三氧杂环己烷/ H_2O_2负载。紫外线可见吸收边缘随着钒含量的增加而红移。 1周期ALD VOx的边缘能与拉曼光谱一致,对应于孤立的四面体VO_4。 V-O-V键与其他循环一起形成,从而逐渐增加VOx域的大小。环己烷氧化脱氢的反应速率系数显示,在高负荷催化剂中,总体活性增加,但在低负荷催化剂中,环己烯形成的比活性较高。

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