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Towards highly efficient electrochemical CO2 reduction: Cell designs, membranes and electrocatalysts

  • Ramato Ashu Tufa
  • , Debabrata Chanda
  • , Ming Ma
  • , David Aili
  • , Taye Beyene Demissie
  • , Jan Vaes
  • , Qingfeng Li
  • , Shanhu Liu
  • , Deepak Pant
  • Technical University of Denmark
  • Henan University
  • Addis Ababa University
  • Czech Academy of Sciences
  • Flemish Institute for Technological Research
  • Centre for Advanced Process Technology for Urban Resource Recovery (CAPTURE)

Research output: Contribution to journalArticlepeer-review

180 Scopus citations

Abstract

An increase in atmospheric CO2 concentration is directly associated with the rising concerns of climate change and energy issues. The development of effective technologies for capture and utilization of atmospheric CO2 is required to mitigate these global challenges. Electrochemical CO2 reduction (eCO2R) is one of the most promising approaches for the conversion of excess renewable energy sources into storable fuels and value-added chemicals. This field has recently advanced enormously with impressive research achievements aiming at bringing the technology on the brink of commercial realization. Herein, we present a comprehensive review analyzing the recent progress and opportunities of using different cell designs with the main focus on membrane-based flow cells for eCO2R, along with the required system-level strategies for optimal engineering to enhance electrocatalytic selectivity and efficiency. Research advance on the use of different polymer electrolyte membranes for CO2 electrolyzers is updated. Main achievements in new catalyst discoveries are assessed in terms of activity, selectivity, stability together with CO2R reaction kinetics. This was supported by the analysis of the computational studies performed to devise the effective catalyst design routes and to understand the pathways for CO2Rs. The interactive effect of the design of reactors and gas diffusion electrodes with catalysts is analyzed for different operating conditions (like pH, temperature and pressure) of CO2 electrolyzers. Finally, an outlook on future research directions in terms of material and process design for a breakthrough in eCO2R technologies is provided.

Original languageEnglish
Article number115557
JournalApplied Energy
Volume277
DOIs
StatePublished - 1 Nov 2020
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy
  2. SDG 13 - Climate Action
    SDG 13 Climate Action

Keywords

  • Cell designs
  • Cell optimization
  • Electrocatalysts
  • Electrochemical CO reduction
  • Membranes
  • Product selectivity

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