Hydrophobic promoter in physical proximity stabilizes cobalt catalysts for durable Fischer-Tropsch synthesis.
basic_science · Level V
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- Record sourced from PubMed, PMID 42711315.
- Also identified by DOI 10.1038/s41467-026-76571-8.
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Abstract
Cobalt catalysts have been widely studied for Fischer-Tropsch synthesis, yet they gradually deactivate under water-rich reaction conditions. Current stabilization strategies rely on complex catalyst compositions or even use noble-metal promoters. Here, we demonstrate that cobalt deactivation can be effectively hindered by physically regulating water diffusion. By physical mixing of a classical Co/SiO<sub>2</sub> catalyst with hydrophobic polydivinylbenzene, a microenvironment is created that promotes directional water transport away from the cobalt. As a result, stable Fischer-Tropsch operation is achieved for 1200 hours, maintaining high activity with 88-90% selectivity toward C<sub>5+</sub> hydrocarbons, minimal methane and CO<sub>2</sub> production. Mechanistic investigations suggest that the combination of hydrophobic polymer could promote directional water removal from the catalyst surface. These findings demonstrate a practical strategy for stabilizing highly water-sensitive catalysts.