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April 7, 2026Sustainability0 citationsOpen Access

Energy-Efficient and Sustainable CO2 Capture in MEA Systems Enabled by FeOOH Catalysts

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FXFei XuQYQuan YangZJZhenzhen Jia

Key Points

  • The aim is to improve the energy efficiency and sustainability of CO2 capture using β-FeOOH catalysts in MEA systems.
  • Incorporated β-FeOOH into a 30 wt% MEA solution
  • Measured CO2 desorption rates and regeneration temperatures
  • Evaluated cyclic stability over ten consecutive cycles
  • CO2 desorption rate increased by 10.9%
  • Regeneration temperature reduced from 120 °C to 85 °C
  • Catalyst maintained structural integrity and activity over ten cycles

Abstract

Carbon dioxide (CO2) capture is a cornerstone of global carbon neutrality, yet the high energy penalty associated with solvent regeneration—particularly for monoethanolamine (MEA) systems—remains a major barrier to its sustainable deployment. This study presents a sustainable and high-performance catalytic solution using micro-sized iron oxyhydroxide (β-FeOOH). Characterized by a high specific surface area (287 m2/g) and a synergistic distribution of abundant Lewis and Brønsted acid sites, the β-FeOOH catalyst significantly enhances CO2 desorption kinetics. Experimental results demonstrate that the incorporation of β-FeOOH into a 30 wt% MEA solution increases the CO2 desorption rate by 10. 9% while simultaneously lowering the regeneration temperature from the conventional 120 °C to 85 °C. Such a reduction in thermal requirements offers a pathway to utilize low-grade industrial waste heat, drastically improving the process’s energy efficiency. Furthermore, the catalyst exhibited remarkable cyclic stability over ten consecutive cycles, maintaining its structural integrity and catalytic activity. These findings highlight β-FeOOH as an eco-friendly, cost-effective, and robust catalyst that aligns with the principles of green chemical engineering, offering a scalable strategy to enhance the sustainability of carbon capture operations.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69d49f8ab33cc4c35a227f78https://doi.org/10.3390/su18073512
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