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The dynamic CO(2) adsorption of polyethylene polyamine-loaded MCM-41 before and after methoxypolyethylene glycol codispersion

To reduce the cost of CO(2) capture, polyethylene polyamine (PEPA), with a high amino density and relatively low price, was loaded into MCM-41 to prepare solid sorbents for CO(2) capture from flue gases. In addition, methoxypolyethylene glycol (MPEG) was codispersed and coimpregnated with PEPA to pr...

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Autores principales: Wang, Xia, Zeng, Wulan, Zhang, Hongyan, Li, Dan, Tian, Hongjing, Hu, Xiude, Wu, Qian, Xin, Chunling, Cao, Xiaoyu, Liu, Wenjing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9070414/
https://www.ncbi.nlm.nih.gov/pubmed/35528601
http://dx.doi.org/10.1039/c9ra05404a
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author Wang, Xia
Zeng, Wulan
Zhang, Hongyan
Li, Dan
Tian, Hongjing
Hu, Xiude
Wu, Qian
Xin, Chunling
Cao, Xiaoyu
Liu, Wenjing
author_facet Wang, Xia
Zeng, Wulan
Zhang, Hongyan
Li, Dan
Tian, Hongjing
Hu, Xiude
Wu, Qian
Xin, Chunling
Cao, Xiaoyu
Liu, Wenjing
author_sort Wang, Xia
collection PubMed
description To reduce the cost of CO(2) capture, polyethylene polyamine (PEPA), with a high amino density and relatively low price, was loaded into MCM-41 to prepare solid sorbents for CO(2) capture from flue gases. In addition, methoxypolyethylene glycol (MPEG) was codispersed and coimpregnated with PEPA to prepare composite sorbents. The pore structures, surface functional groups, adsorption and regeneration properties for the sorbents were measured and characterized. When CO(2) concentration is 15%, for 30, 40 and 50 wt% PEPA-loaded MCM-41, the equilibrium adsorption capacities were respectively determined to be 1.15, 1.47 and 1.66 mmol g(−1) at 60 °C; for 30 wt% PEPA and 20 wt% MPEG, 40 wt% PEPA and 10 wt% MPEG, and 50 wt% PEPA and 5 wt% MPEG codispersed MCM-41, the equilibrium adsorption capacities were respectively determined to be 1.97, 2.22 and 2.25 mmol g(−1) at 60 °C; the breakthrough and equilibrium adsorption capacities for 50 wt% PEPA and 5 wt% MPEG codispersed MCM-41 respectively reached 2.01 and 2.39 mmol g(−1) at 50 °C, all values showed a significant increase compared to PEPA-modified MCM-41. After 10 regenerations, the equilibrium adsorption capacity for codispersed MCM-41 was reduced by 5.0%, with the regeneration performance being better than that of PEPA-loaded MCM-41, which was reduced by 7.8%. The CO(2)-TPD results indicated that the mutual interactions between PEPA and MPEG might change basic sites in MCM-41, thereby facilitating active site exposure and CO(2) adsorption.
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spelling pubmed-90704142022-05-05 The dynamic CO(2) adsorption of polyethylene polyamine-loaded MCM-41 before and after methoxypolyethylene glycol codispersion Wang, Xia Zeng, Wulan Zhang, Hongyan Li, Dan Tian, Hongjing Hu, Xiude Wu, Qian Xin, Chunling Cao, Xiaoyu Liu, Wenjing RSC Adv Chemistry To reduce the cost of CO(2) capture, polyethylene polyamine (PEPA), with a high amino density and relatively low price, was loaded into MCM-41 to prepare solid sorbents for CO(2) capture from flue gases. In addition, methoxypolyethylene glycol (MPEG) was codispersed and coimpregnated with PEPA to prepare composite sorbents. The pore structures, surface functional groups, adsorption and regeneration properties for the sorbents were measured and characterized. When CO(2) concentration is 15%, for 30, 40 and 50 wt% PEPA-loaded MCM-41, the equilibrium adsorption capacities were respectively determined to be 1.15, 1.47 and 1.66 mmol g(−1) at 60 °C; for 30 wt% PEPA and 20 wt% MPEG, 40 wt% PEPA and 10 wt% MPEG, and 50 wt% PEPA and 5 wt% MPEG codispersed MCM-41, the equilibrium adsorption capacities were respectively determined to be 1.97, 2.22 and 2.25 mmol g(−1) at 60 °C; the breakthrough and equilibrium adsorption capacities for 50 wt% PEPA and 5 wt% MPEG codispersed MCM-41 respectively reached 2.01 and 2.39 mmol g(−1) at 50 °C, all values showed a significant increase compared to PEPA-modified MCM-41. After 10 regenerations, the equilibrium adsorption capacity for codispersed MCM-41 was reduced by 5.0%, with the regeneration performance being better than that of PEPA-loaded MCM-41, which was reduced by 7.8%. The CO(2)-TPD results indicated that the mutual interactions between PEPA and MPEG might change basic sites in MCM-41, thereby facilitating active site exposure and CO(2) adsorption. The Royal Society of Chemistry 2019-08-28 /pmc/articles/PMC9070414/ /pubmed/35528601 http://dx.doi.org/10.1039/c9ra05404a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wang, Xia
Zeng, Wulan
Zhang, Hongyan
Li, Dan
Tian, Hongjing
Hu, Xiude
Wu, Qian
Xin, Chunling
Cao, Xiaoyu
Liu, Wenjing
The dynamic CO(2) adsorption of polyethylene polyamine-loaded MCM-41 before and after methoxypolyethylene glycol codispersion
title The dynamic CO(2) adsorption of polyethylene polyamine-loaded MCM-41 before and after methoxypolyethylene glycol codispersion
title_full The dynamic CO(2) adsorption of polyethylene polyamine-loaded MCM-41 before and after methoxypolyethylene glycol codispersion
title_fullStr The dynamic CO(2) adsorption of polyethylene polyamine-loaded MCM-41 before and after methoxypolyethylene glycol codispersion
title_full_unstemmed The dynamic CO(2) adsorption of polyethylene polyamine-loaded MCM-41 before and after methoxypolyethylene glycol codispersion
title_short The dynamic CO(2) adsorption of polyethylene polyamine-loaded MCM-41 before and after methoxypolyethylene glycol codispersion
title_sort dynamic co(2) adsorption of polyethylene polyamine-loaded mcm-41 before and after methoxypolyethylene glycol codispersion
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9070414/
https://www.ncbi.nlm.nih.gov/pubmed/35528601
http://dx.doi.org/10.1039/c9ra05404a
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