Hanzhong Shi, Yang He, Vanessa Lebarbier Dagle
As global demand for light olefins continues to increase, driven by expanding plastics production and the need for jet fuel precursors, biomass-derived oxygenates such as methyl-ethyl-ketone (MEK) have emerged as promising intermediates for olefin production. This study investigates the selective hydrodeoxygenation of MEK to butene over copper catalysts supported on Al2O3, SiO2, and SiO2-Al2O3, each offering distinct acid characteristics. Among the catalysts evaluated, 10Cu/SiO2-Al2O3 achieved the highest olefin selectivity (97.6%) while maintaining a high MEK conversion level (>80%) due to its acidity and favorable metal-support interactions. Further studies revealed that at temperatures above 210 °C, the reaction pathway progressively shifts from hydrodeoxygenation toward aldol-condensation, producing undesired carboxylic acids and ketones, while simultaneously accelerating deactivation through hard-coke formation. A scaled-up experiment using a 100 g catalyst batch demonstrated that 10Cu/SiO2-Al2O3 operated at 210 °C (1 atm, w8 h space velocity = 0.8 h-1, PMEK = 12%) sustains high conversion (∼90%) and olefin selectivity (94-97%) for more than 140 h, with full recovery of activity and selectivity after mild oxidative regeneration. These results establish 10Cu/SiO2-Al2O3 as a robust and scalable catalyst for MEK hydrodeoxygenation, offering mechanistic insight into activity, selectivity, and deactivation pathways critical for industrial implementation.