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March 21, 2026Industrial & Engineering Chemistry Research1 citations

A Low-Temperature Regenerative Porous Amine–Epoxy Polymer for Direct Air Capture

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MYMizuki YamamotoYEYukako EguchiHYHidetaka Yamada

Key Points

  • The study aims to develop and evaluate a porous amine–epoxy polymer for its effectiveness in direct air capture of CO2.
  • Polymerization of triethylenetetramine with epoxy resin to create a porous polymer.
  • Removal of polypropylene glycol as a porogen to achieve desired porosity.
  • Characterization using scanning electron microscopy for structural analysis.
  • Conduct CO2 adsorption experiments under controlled conditions (20 °C, 400 ppm CO2/N2).
  • The synthesized AEP showed an amine density of 10.4 mmol/g and a surface area of 7.5 m2/g.
  • CO2 desorption reached 1.81 mmol/g at 65 °C, indicating excellent performance at low temperatures.
  • The polymer exhibited enhanced thermal stability compared to its individual components.

Abstract

The polymerization of triethylenetetramine (TETA) with epoxy resin produced a porous amine–epoxy polymer (AEP). Polypropylene glycol, used as the porogen, was subsequently removed. This industrially viable method yielded an AEP with a high amine density (10.4 mmol/g), a specific surface area of 7.5 m2/g, and a cocontinuous porous structure. Scanning electron microscopy confirmed the three-dimensional network skeleton and through-hole morphology, with pore sizes below 1 μm. Thermogravimetric analysis revealed that although TETA has limited thermal stability, the synthesized AEP exhibits significantly enhanced thermal resistance. CO2 adsorption experiments, conducted using 400 ppm of CO2/N2 gas at 20 °C and 50% relative humidity, demonstrated that increasing the regeneration temperature moderately increased CO2 desorption. Notably, CO2 desorption at 65 °C reached 1.81 mmol/g, demonstrating excellent low-temperature regeneration performance and working capacity under mild regeneration conditions. These results indicate that the porous AEP is a promising candidate for energy-efficient direct air capture applications.

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Cite This Study

Yamamoto et al. (2026) studied this question.

synapsesocial.com/papers/69be38906e48c4981c6791eehttps://doi.org/10.1021/acs.iecr.5c04481
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