Secondary Amine Chain Length Governs CO2 Absorption in DEEA-Based Blends: Screening, Equilibrium, Thermodynamic, and Speciation

Abstract The effect of secondary amine alkyl chain length on CO2 absorption was investigated in DEEA blends with MAE, EAE, and BAE. Rapid screening identified a 2.5:2.5 molar ratio as the representative formulation based on CO2 loading, saturation behavior, viscosity, and regeneration performance. Equilibrium measurements showed that increasing secondary amine chain length decreased CO2 loading but accelerated saturation, with only a minor effect on the apparent heat of absorption. A Deshmukh–Mather thermodynamic model accurately represented VLE data, with relative average deviations of 4.08%, 3.81%, and 3.14% for the three blends. 13C NMR and species distribution analysis showed that carbamate dominated at low loading, while bicarbonate became prevalent at higher loading. Electrostatic potential analysis further indicated that DEEA promotes proton transfer and early carbamate formation. These results establish a structure–property relationship linking secondary amine chain length with CO2 capacity, absorption kinetics, and reaction speciation in DEEA-based blended amines.

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Publication Details

Journal
Industrial & Engineering Chemistry Research
Published
2026-10-08
DOI
https://doi.org/10.1021/acs.iecr.6c02851
Primary Topic
Carbon Dioxide Capture Technologies
Type
article
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article

Secondary Amine Chain Length Governs CO2 Absorption in DEEA-Based Blends: Screening, Equilibrium, Thermodynamic, and Speciation

Xiao Yu Luo, Tianzi Liu, Hao Chen, Jialuo Xiang et al.
Industrial & Engineering Chemistry Research
Carbon Dioxide Capture Technologies
article

Secondary Amine Chain Length Governs CO2 Absorption in DEEA-Based Blends: Screening, Equilibrium, Thermodynamic, and Speciation

Xiao Yu Luo, Tianzi Liu, Hao Chen, Jialuo Xiang, Ding Wei, Yangqiang Huang
article en

Abstract

Abstract The effect of secondary amine alkyl chain length on CO2 absorption was investigated in DEEA blends with MAE, EAE, and BAE. Rapid screening identified a 2.5:2.5 molar ratio as the representative formulation based on CO2 loading, saturation behavior, viscosity, and regeneration performance. Equilibrium measurements showed that increasing secondary amine chain length decreased CO2 loading but accelerated saturation, with only a minor effect on the apparent heat of absorption. A Deshmukh–Mather thermodynamic model accurately represented VLE data, with relative average deviations of 4.08%, 3.81%, and 3.14% for the three blends. 13C NMR and species distribution analysis showed that carbamate dominated at low loading, while bicarbonate became prevalent at higher loading. Electrostatic potential analysis further indicated that DEEA promotes proton transfer and early carbamate formation. These results establish a structure–property relationship linking secondary amine chain length with CO2 capacity, absorption kinetics, and reaction speciation in DEEA-based blended amines.

Industrial & Engineering Chemistry Research
Hunan University (CN)
Openalex Percentile: Top 22%
Carbon Dioxide Capture Technologies
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Secondary Amine Chain Length Governs CO2 Absorption in DEEA-Based Blends: Screening, Equilibrium, Thermodynamic, and Speciation — Xiao Yu Luo, Tianzi Liu, et al. · Industrial & Engineering Chemistry Research (2026) | TGRS Research Map | TGRS