Anas Jamil Abdulrahman, Niko Heikkinen, Miia Nevander, Miloš Auersvald, Sphurti Prakash Kulkarni, Oleksii Mynko, Behzad Parvizi, Daniël Withoeck, Marco Huotari, Juha Lehtonen, Christian Frilund, Matti Reinikainen, Eveliina Mäkelä, Marvin Kusenberg, Kevin M Van Geem
Rising industrial CO₂ emissions and the limited capacity of current abatement technologies highlight the need for scalable carbon utilization pathways. Fischer-Tropsch synthesis provides a route to convert captured CO₂ into hydrocarbon feedstocks compatible with existing petrochemical processes, such as steam cracking. However, their suitability as steam cracker feedstocks has not yet been fully demonstrated. Three Fischer-Tropsch (FT)-derived feedstocks were generated from captured CO₂ via Reverse Water-Gas Shift followed by Fischer-Tropsch synthesis. The crude FT oil (i) was hydrotreated to produce hydrotreated FT oil (ii), and subsequent distillation yielded a hydrotreated FT naphtha (iii). The feedstocks were characterized using comprehensive two-dimensional gas chromatography, benchmarked against fossil naphtha in a bench-scale steam cracker, and evaluated for their impact on the carbon intensity of ethylene production. FT-derived feedstocks were highly paraffinic and contained negligible sulfur, nitrogen, halogens, and metals. Crude FT oil contained 11.7 wt% oxygenates and 11.3 wt% olefins, which were removed by hydrotreatment, yielding more stable steam cracker feedstocks. When steam-cracking the respective oils at 880 °C, the crude FT oil produced 38% more ethylene than fossil naphtha, while the yield of pyrolysis fuel oil (C10+) was halved. Further upgrading to hydrotreated FT naphtha increased the ethylene advantage to 48% and reduced pyrolysis fuel oil formation to one-third of that with fossil naphtha. The higher ethylene selectivity led to a 27% reduction in cracker-level CO₂ intensity compared with fossil naphtha. These results demonstrate that CO2-derived FT feedstocks can serve as clean, high-yield alternatives for light olefin production within existing petrochemical infrastructure.