4.7 Article

Temperature enhances the ohmic and mass transport behaviour in membrane electrode assembly carbon dioxide electrolyzers

期刊

ENERGY CONVERSION AND MANAGEMENT
卷 243, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.enconman.2021.114302

关键词

Gas diffusion electrode; Temperature; Ohmic; Mass transport; Synchrotron X-ray imaging; Membrane electrode assembly carbon dioxide electrolyzer

资金

  1. Natural Sciences and Engineering Research Council of Canada (NSERC) Discovery Grant Program
  2. Canada Research Chairs Program
  3. David Sanborn Scott Graduate Fellowship
  4. Hatch Graduate Scholarship for Sustainable Energy Research
  5. Bert Wasmund Graduate Fellowship in Sustainable Energy Research
  6. Pierre Rivard Hydrogenics Graduate Fellowship
  7. C. W. Bowman Graduate Scholarship
  8. William Dunbar Memorial Scholarship in Mechanical Engineering
  9. Jason Lee including the NSERC Alexander Graham Bell Canada Graduate Scholarships Doctoral Program, Queen Elizabeth II/Edward Rygiel Graduate Scholarship in Science and Technology, Ontario Graduate Scholarship
  10. Glynn Williams Fellowships
  11. Mrs. Vijayalakshmi Graduate Scholarship in Sustainable Energy
  12. Vanier Canada Graduate Scholarship
  13. Pitt Charles Bertram Award
  14. Ontario Graduate Scholarship
  15. David Sanborn Scott Fellowship
  16. Graduate Student Travel Support Program

向作者/读者索取更多资源

Increasing the operating temperature of a carbon dioxide electrolyzer can significantly reduce ohmic resistances and improve mass transport limitations, leading to higher performance. However, challenges such as the impact of liquid water in the electrode and product gas saturation at high temperatures should be considered.
The operating temperature is a critical parameter for improving the performance of a carbon dioxide electrolyzer. Specifically, the power density reduced by up to 35% (at 215 mA/cm2) when increasing the operating temperature from 25 degrees C to 60 degrees C, and increasing the cell temperature led to significantly lower ohmic resistances and mass transport limitations. A 5-fold reduction in ohmic resistance (from 3.35 ohm.cm2 to 0.64 ohm.Introductioncm2) was achieved by increasing the cell temperature from 25 degrees C to 60 degrees C at 215 mA/cm2. These reductions in ohmic overvoltages were attributed to higher cation exchange membrane water content at higher operating temperatures observed via synchrotron X-ray radiography. The higher water content at higher temperatures was attributed to the relaxation of the polymer backbone of the membrane. The dominating mechanisms for mass transport limitations at high current densities (>305 mA/cm2) were temperature dependent. Specifically, at 40 degrees C, liquid water in the electrode inhibited reactant carbon dioxide transport to the reaction sites; whereas, at 60 degrees C, the product gas saturation in the electrode inhibited mass transport. However, a higher temperature led to consistently lower mass transport losses at each current density (e.g., a reduction from 0.75 V to 0.37 V at 395 mA/cm2 when increasing the temperature from 40 degrees C to 60 degrees C) since less water accumulated in the cathode gas diffusion layer.

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