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Oxygen-enriched surface modification for improving the dispersion of iron oxide on a porous carbon surface and its application as carbon molecular sieves (CMS) for CO(2)/CH(4) separation

The separation of CO(2)/CH(4) can be enhanced by impregnating porous carbon with iron oxide. Dispersion of iron oxide is one of the critical factors which supports the separation process performance. Iron oxide dispersion can be enhanced by enriching the oxygen functional groups on the carbon surfac...

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Autores principales: Mukti, Nur Indah Fajar, Ariyanto, Teguh, Sediawan, Wahyudi Budi, Prasetyo, Imam
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9043581/
https://www.ncbi.nlm.nih.gov/pubmed/35494382
http://dx.doi.org/10.1039/d1ra07481d
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author Mukti, Nur Indah Fajar
Ariyanto, Teguh
Sediawan, Wahyudi Budi
Prasetyo, Imam
author_facet Mukti, Nur Indah Fajar
Ariyanto, Teguh
Sediawan, Wahyudi Budi
Prasetyo, Imam
author_sort Mukti, Nur Indah Fajar
collection PubMed
description The separation of CO(2)/CH(4) can be enhanced by impregnating porous carbon with iron oxide. Dispersion of iron oxide is one of the critical factors which supports the separation process performance. Iron oxide dispersion can be enhanced by enriching the oxygen functional groups on the carbon surface. This study investigates three distinct oxidation processes: oxidation with a 10% H(2)O(2) solution, ozonation with distilled water, and ozonation with a 10% H(2)O(2) solution. The research steps included the following: (i) oxidation, (ii) impregnation of iron oxide followed by calcination, (iii) material characterization, and (iv) material performance analysis. Materials were characterized using N(2) sorption analysis, X-ray diffraction analysis (XRD), scanning electron microscopy-energy dispersive X-ray spectroscopy analysis (SEM-EDX), and Fourier transform infrared analysis (FT-IR). Iron oxide was well dispersed on the carbon surface, as evidenced by the elemental mapping of materials. In addition, the oxygen functional groups increased significantly in the range of 28.6–79.7% following the oxidation process, as indicated by the elemental component using SEM-EDX analysis. The impregnation of iron oxide on oxidized carbon ozonated with distilled water (COA–Fe) obtained a maximum CO(2) uptake capacity of 3.0 mmol g(−1) and CO(2)/CH(4) selectivity increased by up to 190% at a temperature of 30 °C and pressure of 1 atm. Furthermore, the enhancement of CO(2)/CH(4) separation up to 1.45 times was the best performance achieved by COA–Fe. Thus, improving iron oxide dispersion on oxidized carbon surfaces has a potential application in CO(2)/CH(4) separation.
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spelling pubmed-90435812022-04-28 Oxygen-enriched surface modification for improving the dispersion of iron oxide on a porous carbon surface and its application as carbon molecular sieves (CMS) for CO(2)/CH(4) separation Mukti, Nur Indah Fajar Ariyanto, Teguh Sediawan, Wahyudi Budi Prasetyo, Imam RSC Adv Chemistry The separation of CO(2)/CH(4) can be enhanced by impregnating porous carbon with iron oxide. Dispersion of iron oxide is one of the critical factors which supports the separation process performance. Iron oxide dispersion can be enhanced by enriching the oxygen functional groups on the carbon surface. This study investigates three distinct oxidation processes: oxidation with a 10% H(2)O(2) solution, ozonation with distilled water, and ozonation with a 10% H(2)O(2) solution. The research steps included the following: (i) oxidation, (ii) impregnation of iron oxide followed by calcination, (iii) material characterization, and (iv) material performance analysis. Materials were characterized using N(2) sorption analysis, X-ray diffraction analysis (XRD), scanning electron microscopy-energy dispersive X-ray spectroscopy analysis (SEM-EDX), and Fourier transform infrared analysis (FT-IR). Iron oxide was well dispersed on the carbon surface, as evidenced by the elemental mapping of materials. In addition, the oxygen functional groups increased significantly in the range of 28.6–79.7% following the oxidation process, as indicated by the elemental component using SEM-EDX analysis. The impregnation of iron oxide on oxidized carbon ozonated with distilled water (COA–Fe) obtained a maximum CO(2) uptake capacity of 3.0 mmol g(−1) and CO(2)/CH(4) selectivity increased by up to 190% at a temperature of 30 °C and pressure of 1 atm. Furthermore, the enhancement of CO(2)/CH(4) separation up to 1.45 times was the best performance achieved by COA–Fe. Thus, improving iron oxide dispersion on oxidized carbon surfaces has a potential application in CO(2)/CH(4) separation. The Royal Society of Chemistry 2021-11-16 /pmc/articles/PMC9043581/ /pubmed/35494382 http://dx.doi.org/10.1039/d1ra07481d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Mukti, Nur Indah Fajar
Ariyanto, Teguh
Sediawan, Wahyudi Budi
Prasetyo, Imam
Oxygen-enriched surface modification for improving the dispersion of iron oxide on a porous carbon surface and its application as carbon molecular sieves (CMS) for CO(2)/CH(4) separation
title Oxygen-enriched surface modification for improving the dispersion of iron oxide on a porous carbon surface and its application as carbon molecular sieves (CMS) for CO(2)/CH(4) separation
title_full Oxygen-enriched surface modification for improving the dispersion of iron oxide on a porous carbon surface and its application as carbon molecular sieves (CMS) for CO(2)/CH(4) separation
title_fullStr Oxygen-enriched surface modification for improving the dispersion of iron oxide on a porous carbon surface and its application as carbon molecular sieves (CMS) for CO(2)/CH(4) separation
title_full_unstemmed Oxygen-enriched surface modification for improving the dispersion of iron oxide on a porous carbon surface and its application as carbon molecular sieves (CMS) for CO(2)/CH(4) separation
title_short Oxygen-enriched surface modification for improving the dispersion of iron oxide on a porous carbon surface and its application as carbon molecular sieves (CMS) for CO(2)/CH(4) separation
title_sort oxygen-enriched surface modification for improving the dispersion of iron oxide on a porous carbon surface and its application as carbon molecular sieves (cms) for co(2)/ch(4) separation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9043581/
https://www.ncbi.nlm.nih.gov/pubmed/35494382
http://dx.doi.org/10.1039/d1ra07481d
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