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Updated: Jul 10, 2026

Versatile CO2 Transformations into Complex Products: A One-pot Two-step Strategy
Published on: November 9, 2019
CO2-assisted dehydrogenation-hydroformylation cascade enables syngas self-sufficiency and carbon-efficient propane
Kaige Tian1,2, Pengyu Xiang1, Xianhui Wang1,2
1School of Chemical Engineering & Technology, Key Laboratory for Green Chemical Technology of Ministry of Education, Tianjin University, Collaborative Innovation Center for Chemical Science & Engineering, Tianjin 300072, China.
None:
Propane upgrading is fundamentally constrained by the high energy demand of conventional dehydrogenation and the reliance of hydroformylation on fossil-derived syngas, limiting both efficiency and sustainability. We redesign this architecture by establishing a carbon dioxide (CO2)-assisted oxidative dehydrogenation-hydroformylation (CO2-ODH-HF) cascade that replaces propane dehydrogenation (PDH) with a CO2-ODH reactor and circulates CO2 to generate carbon monoxide (CO) and dihydrogen (H2) internally. Aspen Plus simulations show that this shift in reaction route creates a syngas self-sufficient system in which propylene formation, CO2 utilization, and hydroformylation become directly coupled. The integrated cascade enhances carbon-utilization efficiency, eliminates external CO procurement, and substantially reduces total production costs compared with PDH-HF. Life-cycle assessment further indicates ~42% lower greenhouse-gas emissions per kilogram of aldehyde produced, without triggering economic-environmental trade-offs. Sensitivity analyses reveal strong robustness against fluctuations in the feed price of liquefied petroleum gas (LPG) containing propane compounds, CO cost, and hydroformylation catalyst loss. By restructuring underlying reaction pathways and carbon flows, the CO2-ODH-HF cascade establishes a scalable and carbon-efficient route for propane upgrading and aldehyde synthesis.
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