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April 26, 2026Reviews in Chemical Engineering2 citationsOpen Access

A review of recent advances in solvent-based technologies for postcombustion CO 2 capture

SMSomayeh MirzaeiCHChin-Yu HsuRSRuei-Hao Shie

Key Points

  • This review aims to evaluate recent advancements in solvent-based technologies for postcombustion CO2 capture systems.
  • Comparison of seven major solvent classes: amine blends, amino acid-based solvents, phase-change solvents, water-lean systems, ionic liquids, deep eutectic solvents, and nanofluids.
  • Assessment of parameters like absorption capacity, regeneration efficiency, and solvent stability.
  • Analysis of energy savings and environmental compatibility among different solvent classes.
  • Amine blends achieved 33-60% reduction in regeneration energy, proving to be a practical short-term solution.
  • Phase-change and biphasic solvents recorded the lowest regeneration energies at 0.74-1.3 GJ t−1 CO2.
  • DESs and ILs exhibit long-term potential but face challenges in viscosity and recyclability.

Abstract

Abstract As a result of recent advances, solvent-based postcombustion CO 2 capture (PCC) systems have shown markedly improved absorption capacity, regeneration efficiency, and solvent stability compared with conventional monoethanolamine systems. This review provides a comparative assessment of seven major solvent classes, namely, amine blends and promoters, amino acid-based solvents, phase-change solvents, water-lean and nonaqueous systems, ionic liquids (ILs), deep eutectic solvents (DESs), and nanofluids. Among these solvent classes, amine blends remain the most practical short-term solution, achieving 33–60 % reductions in regeneration energy with proven scalability. Phase-change and biphasic solvents deliver the lowest regeneration energies (0.74–1.3 GJ t −1 CO 2 ) among solvent classes, whereas water-lean systems balance energy savings with corrosion resistance and reduced water use. DESs and ILs offer long-term potential through molecular tunability and environmental compatibility. However, their viscosity and recyclability remain key challenges. Nanofluids expand the research frontier by coupling chemical reactivity with enhanced mass transfer. Progress in solvent-based PCC depends on integrating molecular design, process optimization, and pilot-scale validation to achieve low-energy, stable, and scalable CO 2 capture technologies.

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Cite This Study

Mirzaei et al. (2026) studied this question.

synapsesocial.com/papers/69edac074a46254e215b3d74https://doi.org/10.1515/revce-2025-0082
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