4.8 Article

Electrochemically-mediated amine regeneration of CO2 capture: From electrochemical mechanism to bench-scale visualization study

期刊

APPLIED ENERGY
卷 302, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.apenergy.2021.117554

关键词

Carbon dioxide capture; EMAR; H-cell; Electrochemical mechanism; Bench-scale study

资金

  1. National Natural Science Foundation of China [51876150, 52050027]
  2. China Postdoctoral Science Foundation [2020M673390]
  3. Shaanxi Province Science Foundation for Youths [2020JQ-058]
  4. Fundamental Research Funds for the Central Universities [xjh012020034]

向作者/读者索取更多资源

The study analyzed the electrochemical behaviors of MFTECs with MEA solvent and conducted visualization studies to investigate the desorption performance of the system. Results showed that MFTECs enable higher electrode active surface area and lower cell resistance, contributing to enhancing the regeneration performance of CO2 desorption based on EMAR.
Electrochemically-mediated amine regeneration (EMAR) is a new CO2 capture technology with the potential to exploit the excellent removal efficiencies of thermal amine scrubbers while reducing parasitic energy losses and capital costs. To achieve higher efficiency and explore the industrial application of the promising EMAR system, a home-designed bench-scale modular flowing-through electrolysis cells (MFTECs) is proposed. The MFTECs with MEA solvent is carefully analyzed from electrochemical mechanism to bench-scale demonstration. Firstly, a series of electrochemical experiments were conducted in an H-cell to study the unknown electrochemical behaviors under various complex concentrations and temperatures, which provided a guidance to enhance the electrochemical performance. Subsequently, a visualization study of the CO2 desorption process in MFTECs was conducted at different operating conditions (current, complex concentration, electrode position, and reaction time) to investigate the desorption performance of the proposed MFTECs system. This framework allowed for direct observation and comprehension of the CO2 desorption process, as well as the movement and interaction of CO2 bubbles in MFTECs. Finally, results indicated that the proposed MFTECs enables higher electrode active surface area and lower cell resistance. This will contribute to enhancing the regeneration performance and promoting industrial application of CO2 desorption based on EMAR.

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