From Flue Gas to Syngas: Composite Electrode Based on Ionic Liquid and Microporous Polymer for MEA-Based CO2 Electrolysis
Article
Article Title | From Flue Gas to Syngas: Composite Electrode Based on Ionic Liquid and Microporous Polymer for MEA-Based CO2 Electrolysis |
---|---|
ERA Journal ID | 1313 |
Article Category | Article |
Authors | Dorosti, Fatereh, Rabiee, Hesamoddin, Dutta, Abhijit, Yan, Penghui, Ge, Lei, Yu, Xin, Rieder, Alain and Broekmann, Peter |
Journal Title | Angewandte Chemie |
Article Number | e202513103 |
Number of Pages | 13 |
Year | 2025 |
Publisher | John Wiley & Sons |
Place of Publication | Germany |
ISSN | 0044-8249 |
1433-7851 | |
1521-3773 | |
Digital Object Identifier (DOI) | https://doi.org/10.1002/anie.202513103 |
Web Address (URL) | https://onlinelibrary.wiley.com/doi/10.1002/anie.202513103 |
Abstract | The electrochemical CO2 reduction reaction (ECO2R) offers a promising pathway to convert CO2 into value-added products. While catalyst advances remain crucial, gas-diffusion electrodes (GDEs) architecture is equally vital in CO2 electrolyzer design. Most ECO2R studies use pure CO2 feeds, whereas industrial sources like flue gas contain ∼15% CO2, requiring costly purification. Eliminating this step demands electrolyzers that directly process impure streams via in situ separation. Here, we introduce a composite GDE (CGDE) featuring a thin CO2-selective interlayer of intrinsically microporous polymer (PIM-1) reinforced with the CO2-philic ionic liquid [Emim][BF4]. This layer selectively adsorbs CO2 and suppresses N2/O2 existence at the catalyst interface. In simulated flue gas (15% CO2, 5% O2 in N2), the CGDE with 20 wt% [Emim][BF4]/PIM-1 achieved >70% CO Faradaic efficiency (FE) at 100 mA cm−2, versus ∼20% FE for a pristine GDE. Multiphysics simulations confirmed effective CO2 delivery through the selective layer, with minimal O2 permeation. Cost estimation analysis indicates around 25% reduction in CO's minimum selling price using the integrated design and >50% under ideal performance metrics by eliminating compression/transport. These results demonstrate that advanced electrode design with CO2-selective interlayer enables direct mixed-gas ECO2R, establishes key design criteria for selective layers, and significantly improves process economics. |
Contains Sensitive Content | Does not contain sensitive content |
ANZSRC Field of Research 2020 | 400404. Electrochemical energy storage and conversion |
Byline Affiliations | University of Bern, Switzerland |
University of Queensland | |
Centre for Future Materials |
https://research.usq.edu.au/item/zz195/from-flue-gas-to-syngas-composite-electrode-based-on-ionic-liquid-and-microporous-polymer-for-mea-based-co2-electrolysis
Download files
Published Version
Angew Chem Int Ed - 2025 - Rabiee - From Flue Gas to Syngas Composite Electrode Based on Ionic Liquid and Microporous.pdf | ||
License: CC BY 4.0 | ||
File access level: Anyone |
1
total views0
total downloads1
views this month0
downloads this month