甲烷化
初湿浸渍
催化作用
材料科学
化学工程
化学
有机化学
选择性
工程类
作者
Angelina Evtushkova,Jason M.J.J. Heinrichs,Nikolay Kosinov,Emiel J. M. Hensen
标识
DOI:10.1002/cctc.202500679
摘要
Abstract A set of Co/CeO 2 catalysts with varying Co loading was prepared by wet impregnation of Co onto flame‐synthesized CeO 2 and tested in CO 2 methanation. At low Co loading (2.5 mol.%), Co existed as Co 2+ ions strongly interacting with CeO 2 , which remained unreduced at 300 °C. This population of highly dispersed Co 2+ (∼2.5 mol.%) was constant across all catalysts. Higher Co loadings (5 and 10 mol.%) led to segregated Co 3 O 4 nanoparticles (∼2–2.5 nm), which partially reduced to metallic Co nanoparticles (2.5 – 3 nm) at 300 °C. At low Co content, the impregnated catalysts mainly produced CO at a low CO 2 conversion, while catalysts ≥ 5 mol% Co favored CH₄ formation with minor CO and C₂H₆ by‐products. Under CO hydrogenation, these samples showed high selectivity toward olefins and oxygenates (86%) and low CH₄ selectivity. All catalysts experienced deactivation during CO and CO₂ hydrogenation, attributed to carbon deposition on Co nanoparticles. The highly dispersed Co 2 ⁺ and small Co clusters were more resistant to deactivation and selective for CO production. Oxidative regeneration effectively removed carbon deposits and restored initial activity. These results highlight the influence of Co dispersion and particle size on product selectivity and catalyst stability during CO₂ hydrogenation.
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