Understanding the oxidative and thermal degradation of CO 2 sorbents is essential for assessing long‐term sorbent stability in direct air capture (DAC). The potential degradation pathway of imidazolium cyanopyrrolide, an ionic liquid (IL) functionalized for superior CO 2 capacity and selectivity, is evaluated under accelerated degradation conditions to elucidate the secondary reactions that can occur during repetitive absorption‐desorption thermal‐swing cycles. The combined analysis from various spectroscopic, chromatographic, and thermal gravimetric measurements indicated that radical and S N 2 mechanisms in degradation are encouraged by the nucleophilicity of the anion. Thickening of the liquid and gas evolution are accompanied by 50 % reduction in CO 2 capacity after a 7‐day exposure to O 2 under 80 °C. To prevent long exposure to conventional thermal heating, microwave (MW) regeneration of the CO 2 ‐reactive IL is used, where dielectric heating at 80 and 100 °C rapidly desorbs CO 2 and regenerates the IL without any measurable degradation.
Lee, Yun‐Yang, et al. "Microwave Regeneration and Thermal and Oxidative Stability of Imidazolium Cyanopyrrolide Ionic Liquid for Direct Air Capture of Carbon Dioxide." ChemSusChem, vol. 16, no. 13, May. 2023. https://doi.org/10.1002/cssc.202300118
Lee, Yun‐Yang, Cagli, Eda, Klemm, Aidan, Park, Yensil, Dikki, Ruth, Kidder, Michelle K., & Gurkan, Burcu (2023). Microwave Regeneration and Thermal and Oxidative Stability of Imidazolium Cyanopyrrolide Ionic Liquid for Direct Air Capture of Carbon Dioxide. ChemSusChem, 16(13). https://doi.org/10.1002/cssc.202300118
Lee, Yun‐Yang, Cagli, Eda, Klemm, Aidan, et al., "Microwave Regeneration and Thermal and Oxidative Stability of Imidazolium Cyanopyrrolide Ionic Liquid for Direct Air Capture of Carbon Dioxide," ChemSusChem 16, no. 13 (2023), https://doi.org/10.1002/cssc.202300118
@article{osti_1972767,
author = {Lee, Yun‐Yang and Cagli, Eda and Klemm, Aidan and Park, Yensil and Dikki, Ruth and Kidder, Michelle K. and Gurkan, Burcu},
title = {Microwave Regeneration and Thermal and Oxidative Stability of Imidazolium Cyanopyrrolide Ionic Liquid for Direct Air Capture of Carbon Dioxide},
annote = {Abstract Understanding the oxidative and thermal degradation of CO 2 sorbents is essential for assessing long‐term sorbent stability in direct air capture (DAC). The potential degradation pathway of imidazolium cyanopyrrolide, an ionic liquid (IL) functionalized for superior CO 2 capacity and selectivity, is evaluated under accelerated degradation conditions to elucidate the secondary reactions that can occur during repetitive absorption‐desorption thermal‐swing cycles. The combined analysis from various spectroscopic, chromatographic, and thermal gravimetric measurements indicated that radical and S N 2 mechanisms in degradation are encouraged by the nucleophilicity of the anion. Thickening of the liquid and gas evolution are accompanied by 50 % reduction in CO 2 capacity after a 7‐day exposure to O 2 under 80 °C. To prevent long exposure to conventional thermal heating, microwave (MW) regeneration of the CO 2 ‐reactive IL is used, where dielectric heating at 80 and 100 °C rapidly desorbs CO 2 and regenerates the IL without any measurable degradation. },
doi = {10.1002/cssc.202300118},
url = {https://www.osti.gov/biblio/1972767},
journal = {ChemSusChem},
issn = {ISSN 1864-5631},
number = {13},
volume = {16},
place = {Germany},
publisher = {Wiley Blackwell (John Wiley & Sons)},
year = {2023},
month = {05}}