Abstract
CO hydrogenation has been studied on cobalt foils as model catalysts for Fischer–Tropsch (FT) synthesis. The effect of pretreatment (number of calcinations and different reduction times) for cobalt foil catalysts at 220 °C, 1 bar, and H2/CO = 3 has been studied in a microreactor. The foils were examined by scanning electron microscopy (SEM). It was found that the catalytic activity of the cobalt foil increases with the number of pretreatments. The mechanism is likely an increase in the available cobalt surface area from progressively deeper oxidation of the foil, supported by surface roughness detected by SEM. The highest FT activity was obtained using a reduction time of only 5 min (compared to 1 and 30 min). Prolonged reduction caused the sintering of cobalt crystallites, while too short of a reduction time led to incomplete reduction and small crystallites susceptible to low turn-over frequency from structure sensitivity. Larger crystals from longer reduction times gave increased selectivity to heavier components. The paraffin/olefin ratio increased with the increasing number of pretreatments due to olefin hydrogenation favored by enhanced cobalt site density. From the results, it is suggested that olefin hydrogenation is not structure sensitive, and that mass transfer limitations may occur depending on the pretreatment procedure. Produced water did not influence the results for the low conversions experienced in the present study (<6%).
Funder
The Research Council of Norway
Subject
Physical and Theoretical Chemistry,Catalysis
Cited by
2 articles.
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1. Synthesis and Structure of Cobalt Nanocoatings on Porous Aluminum Oxide;Journal of Surface Investigation: X-ray, Synchrotron and Neutron Techniques;2023-12
2. Synthesis and Structure of the Nanosized Cobalt Coatings on Porous Aluminum Oxide;Поверхность. Рентгеновские, синхротронные и нейтронные исследования;2023-11-01