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Development and systematic evaluation of triamine-based functional deep eutectic solvents for efficient CO2 capture
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Energy Science.ORCID iD: 0009-0004-9534-0434
Luleå University of Technology, Department of Engineering Sciences and Mathematics, Energy Science.ORCID iD: 0009-0006-1895-9676
Center of Ionic Liquids and Green Energy, Beijing Key Laboratory of Solid State Battery and Energy Storage Process, Institute of Process Engineering, Chinese Academy of Sciences, Beijing, China; State Key Laboratory of Heavy Oil Processing, College of Chemical Engineering and Environment, China University of Petroleum-Beijing, Beijing, China..
Department of Process Metallurgy, Swerim AB, Luleå, Sweden.
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2026 (English)In: AIChE Journal, ISSN 0001-1541, E-ISSN 1547-5905, Vol. 72, article id e70184Article in journal (Refereed) Published
Abstract [en]

The development of advanced absorbents for effectively capturing carbon dioxide is crucial in mitigating greenhouse gas emissions. This study introduced a series of deep eutectic solvents (DESs) for CO2 capture and identified the most promising DESs with the stepwise screening method based on their absorption capacity, absorption rate, thermal stability, desorption efficiency, and apparent activation energy. Consequently, compared to the monoethanolamine (MEA), in the 30 wt% aqueous solutions, [1,2,3-Triazolium chloride][diethylenetriamine] ([TrizCl][DETA]) and [Piperazinium chloride][diethylenetriamine] ([PzCl][DETA]) improved the CO2 absorption capacities by 31% and 34%, absorption rates by 12% and 30%, and the amounts of CO2 desorbed by 42% and 23%, as well as reduced the apparent activation energies by 9% and 28%, respectively. Meanwhile, their thermal stabilities (degradation onset temperatures, Tonset) were enhanced by 101% and 32%, respectively. The FTIR and NMR analyses were conducted to provide deeper insights into the chemical absorption mechanism of CO2 by the DESs. 

Place, publisher, year, edition, pages
John Wiley & Sons, 2026. Vol. 72, article id e70184
Keywords [en]
absorption capacity, activation energy, CO2 capture, deep eutectic solvent, regeneration, thermal stability
National Category
Separation Processes Energy Engineering
Research subject
Energy Engineering
Identifiers
URN: urn:nbn:se:ltu:diva-115161DOI: 10.1002/aic.70184ISI: 001633934600001Scopus ID: 2-s2.0-105024443785OAI: oai:DiVA.org:ltu-115161DiVA, id: diva2:2007320
Funder
Swedish Energy Agency, P2021-00004The Swedish Foundation for International Cooperation in Research and Higher Education (STINT), CH2019-8287
Note

Funder: European Union;

Full text license: CC BY;

This article has previously appeared as a manuscript in a thesis.

Available from: 2025-10-17 Created: 2025-10-17 Last updated: 2026-06-30Bibliographically approved
In thesis
1. Development and Identification of Amine-based Deep Eutectic Solvents for CO2 Capture
Open this publication in new window or tab >>Development and Identification of Amine-based Deep Eutectic Solvents for CO2 Capture
2025 (English)Licentiate thesis, comprehensive summary (Other academic)
Abstract [en]

Amine-based deep eutectic solvents (DESs) are promising alternatives to conventional amines for CO2 capture; however, the molecular design principle to achieve practical performance remains unclear. In response to this challenge, this licentiate thesis aims to develop DES-based solvents that achieve balanced performance in 30 wt% aqueous solutions, including high absorption capacity, efficient desorption, good thermal stability, and manageable viscosity, with ethanolamine (MEA) used as the reference. 

In the first part of this work, ethylenediamine (EDA) and diethylenetriamine (DETA) were selected as hydrogen-bond donors (HBD), while a series of hydrogen-bond acceptors (HBAs) were varied to evaluate their effects on CO2 absorption and desorption behaviors. The solvents were evaluated for absorption capacity and absorption rate at 22 °C and 1 bar, for desorption and cyclic loading at 110 °C, and for thermal stability using thermogravimetric (TG) and derivative thermogravimetric (DTG). From this side-by-side comparison, 30 wt% aqueous [TrizCl][DETA] was identified as the most practical candidate. It achieves a CO2 absorption capacity of 0.164 g-CO2/g-solvent and an absorption rate of 0.183 g-CO2/(g-solvent·min), provides the largest cyclic loading of 0.091 g-CO2/g-solvent, and exhibits an onset decomposition temperature (Tonset) of approximately 178.7 °C. Although EDA-based DESs demonstrate the highest capacity and rapid absorption, for example, a 30 wt% aqueous [N-1,2,4-TrizCl][EDA] solution reaches 0.203 g-CO2/g-solvent, they exhibit limited thermal stability.

Building on these findings, the second part of the study focused on structure-property relationships by fixing [TrizCl] as the HBA and varying the amine-based HBDs, including diamines, triamines, and alkanolamines. The comparison revealed that the balanced performance of [TrizCl][DETA] arises from the optimal combination of the triazolium-based HBA and the triamine HBD, which provides sufficient basicity and hydrogen-bonding capacity for CO2 activation. 

Additionally, [TrizCl][DETA] maintains workable viscosity after CO2 absorption at about 7.5 mPa·s, and exhibits stable absorption-desorption behaviors. Corrosion, oxidative degradation, and mechanistic analyses confirm its stability and explain the rise of moderate viscosity via carbamate and bicarbonate formation, indicating strong potential for CO2 capture and solvent recycling.

Place, publisher, year, edition, pages
Luleå: Luleå University of Technology, 2025
Series
Licentiate thesis / Luleå University of Technology, ISSN 1402-1757
Keywords
Carbon dioxide, Deep eutectic solvent, Absorption, Desorption, Stability
National Category
Separation Processes
Research subject
Energy Engineering
Identifiers
urn:nbn:se:ltu:diva-114895 (URN)978-91-8048-929-4 (ISBN)978-91-8048-930-0 (ISBN)
Presentation
2025-11-21, E632, Luleå University of Technology, Luleå, 10:00 (English)
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Available from: 2025-10-20 Created: 2025-10-17 Last updated: 2026-03-09Bibliographically approved

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Shi, QiangbingJia, KaigeJi, Xiaoyan

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