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CO(2) Adsorption Enhanced by Tuning the Layer Charge in a Clay Mineral

[Image: see text] Due to the compact two-dimensional interlayer pore space and the high density of interlayer molecular adsorption sites, clay minerals are competitive adsorption materials for carbon dioxide capture. We demonstrate that with a decreasing interlayer surface charge in a clay mineral,...

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Autores principales: Bø Hunvik, Kristoffer W., Loch, Patrick, Wallacher, Dirk, Kirch, Alexsandro, Cavalcanti, Leide P., Rieß, Martin, Daab, Matthias, Josvanger, Vegard, Grätz, Sven, Yokaichiya, Fabiano, Knudsen, Kenneth Dahl, Rodrigues Miranda, Caetano, Breu, Josef, Fossum, Jon Otto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8675214/
https://www.ncbi.nlm.nih.gov/pubmed/34851639
http://dx.doi.org/10.1021/acs.langmuir.1c02467
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author Bø Hunvik, Kristoffer W.
Loch, Patrick
Wallacher, Dirk
Kirch, Alexsandro
Cavalcanti, Leide P.
Rieß, Martin
Daab, Matthias
Josvanger, Vegard
Grätz, Sven
Yokaichiya, Fabiano
Knudsen, Kenneth Dahl
Rodrigues Miranda, Caetano
Breu, Josef
Fossum, Jon Otto
author_facet Bø Hunvik, Kristoffer W.
Loch, Patrick
Wallacher, Dirk
Kirch, Alexsandro
Cavalcanti, Leide P.
Rieß, Martin
Daab, Matthias
Josvanger, Vegard
Grätz, Sven
Yokaichiya, Fabiano
Knudsen, Kenneth Dahl
Rodrigues Miranda, Caetano
Breu, Josef
Fossum, Jon Otto
author_sort Bø Hunvik, Kristoffer W.
collection PubMed
description [Image: see text] Due to the compact two-dimensional interlayer pore space and the high density of interlayer molecular adsorption sites, clay minerals are competitive adsorption materials for carbon dioxide capture. We demonstrate that with a decreasing interlayer surface charge in a clay mineral, the adsorption capacity for CO(2) increases, while the pressure threshold for adsorption and swelling in response to CO(2) decreases. Synthetic nickel-exchanged fluorohectorite was investigated with three different layer charges varying from 0.3 to 0.7 per formula unit of Si(4)O(10)F(2). We associate the mechanism for the higher CO(2) adsorption with more accessible space and adsorption sites for CO(2) within the interlayers. The low onset pressure for the lower-charge clay is attributed to weaker cohesion due to the attractive electrostatic forces between the layers. The excess adsorption capacity of the clay is measured to be 8.6, 6.5, and 4.5 wt % for the lowest, intermediate, and highest layer charges, respectively. Upon release of CO(2), the highest-layer charge clay retains significantly more CO(2). This pressure hysteresis is related to the same cohesion mechanism, where CO(2) is first released from the edges of the particles thereby closing exit paths and trapping the molecules in the center of the clay particles.
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spelling pubmed-86752142021-12-17 CO(2) Adsorption Enhanced by Tuning the Layer Charge in a Clay Mineral Bø Hunvik, Kristoffer W. Loch, Patrick Wallacher, Dirk Kirch, Alexsandro Cavalcanti, Leide P. Rieß, Martin Daab, Matthias Josvanger, Vegard Grätz, Sven Yokaichiya, Fabiano Knudsen, Kenneth Dahl Rodrigues Miranda, Caetano Breu, Josef Fossum, Jon Otto Langmuir [Image: see text] Due to the compact two-dimensional interlayer pore space and the high density of interlayer molecular adsorption sites, clay minerals are competitive adsorption materials for carbon dioxide capture. We demonstrate that with a decreasing interlayer surface charge in a clay mineral, the adsorption capacity for CO(2) increases, while the pressure threshold for adsorption and swelling in response to CO(2) decreases. Synthetic nickel-exchanged fluorohectorite was investigated with three different layer charges varying from 0.3 to 0.7 per formula unit of Si(4)O(10)F(2). We associate the mechanism for the higher CO(2) adsorption with more accessible space and adsorption sites for CO(2) within the interlayers. The low onset pressure for the lower-charge clay is attributed to weaker cohesion due to the attractive electrostatic forces between the layers. The excess adsorption capacity of the clay is measured to be 8.6, 6.5, and 4.5 wt % for the lowest, intermediate, and highest layer charges, respectively. Upon release of CO(2), the highest-layer charge clay retains significantly more CO(2). This pressure hysteresis is related to the same cohesion mechanism, where CO(2) is first released from the edges of the particles thereby closing exit paths and trapping the molecules in the center of the clay particles. American Chemical Society 2021-12-01 2021-12-14 /pmc/articles/PMC8675214/ /pubmed/34851639 http://dx.doi.org/10.1021/acs.langmuir.1c02467 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Bø Hunvik, Kristoffer W.
Loch, Patrick
Wallacher, Dirk
Kirch, Alexsandro
Cavalcanti, Leide P.
Rieß, Martin
Daab, Matthias
Josvanger, Vegard
Grätz, Sven
Yokaichiya, Fabiano
Knudsen, Kenneth Dahl
Rodrigues Miranda, Caetano
Breu, Josef
Fossum, Jon Otto
CO(2) Adsorption Enhanced by Tuning the Layer Charge in a Clay Mineral
title CO(2) Adsorption Enhanced by Tuning the Layer Charge in a Clay Mineral
title_full CO(2) Adsorption Enhanced by Tuning the Layer Charge in a Clay Mineral
title_fullStr CO(2) Adsorption Enhanced by Tuning the Layer Charge in a Clay Mineral
title_full_unstemmed CO(2) Adsorption Enhanced by Tuning the Layer Charge in a Clay Mineral
title_short CO(2) Adsorption Enhanced by Tuning the Layer Charge in a Clay Mineral
title_sort co(2) adsorption enhanced by tuning the layer charge in a clay mineral
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8675214/
https://www.ncbi.nlm.nih.gov/pubmed/34851639
http://dx.doi.org/10.1021/acs.langmuir.1c02467
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