Abstract
Gas separation technology faces the challenge of balancing high efficiency, selectivity, and low energy consumption. This work achieves efficient CO2 capture through chemical absorption enhanced by a mutual extraction effect. A reversible biphasic system using hydrophobic N,N′-di- tert -butylethylenediamine (DTBEDA) and N,N-dimethylcyclohexylamine (DMCA) exploits unique absorption homogeneous-desorption phase separation characteristics, overcoming high-temperature desorption limitations of traditional absorbents. The absorbent exhibits CO2 loading of 0.88 mol/mol with 98.84% desorption efficiency at 363 K, which is 30–40 K lower than conventional amine absorbents. The regeneration energy consumption is 1.45 GJ/t CO2, 62.14% lower than MEA. A 630 MW coal-fired power plant equipped with the capture technology could save power by 50.38% and 33.78% compared with plants using MEA and current advanced absorbents. Molecular analysis via dipole moments, surface electrostatic potential, and intermolecular forces reveals the desorption mechanism. The technology enables industrial waste-heat-driven CO2 capture with substantial cost reduction, offering new pathways for enhanced gas separation applications.
| Original language | English |
|---|---|
| Article number | 103302 |
| Journal | Cell Reports Physical Science |
| Volume | 7 |
| Issue number | 5 |
| DOIs | |
| Publication status | Published - 20 May 2026 |
Keywords
- CO capture
- enhanced desorption
- low-temperature desorption
- mechanism
- mutual extraction
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