Trace-level halogen blocks CO<sub>2</sub> emission in Fischer-Tropsch synthesis for olefins production.
basic_science · Level V
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- Record sourced from PubMed, PMID 41166490.
- Also identified by DOI 10.1126/science.aea1655.
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Abstract
Sustainable production of fuels and olefins from syngas (carbon monoxide and hydrogen) through the Fischer-Tropsch synthesis process requires catalysts that deliver high selectivity, industrial productivity, and minimal carbon dioxide (CO<sub>2</sub>) emissions. Current industrial iron catalysts form substantial CO<sub>2</sub> by-product that limits carbon efficiency. We report that introducing trace amounts [parts per million (ppm) level] of halogen-containing compounds into the feed gas can suppress CO<sub>2</sub> formation using iron-based catalysts and boost olefin selectivity over paraffin and olefin productivity. Cofeeding 20 ppm bromomethane over an iron carbide catalyst decreased CO<sub>2</sub> selectivity to <1% and increased olefin selectivity to ~85% among all carbon-containing products. Surface-bound halogens modulated the catalyst surface structure and selectively inhibited pathways responsible for CO<sub>2</sub> generation and olefin hydrogenation. This strategy provides a simple, scalable, and broadly applicable route for carbon-efficient syngas conversion.