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CO2-Induced Displacement of Na+ and K+ in Zeolite INaKI-A
Stockholm University, Faculty of Science, Department of Materials and Environmental Chemistry (MMK).ORCID iD: 0000-0003-3185-3535
Stockholm University, Faculty of Science, Department of Materials and Environmental Chemistry (MMK). Chalmers University of Technology, Sweden; University of Warsaw, Poland.
Stockholm University, Faculty of Science, Department of Materials and Environmental Chemistry (MMK).ORCID iD: 0000-0002-5413-9038
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Number of Authors: 72018 (English)In: The Journal of Physical Chemistry C, ISSN 1932-7447, E-ISSN 1932-7455, Vol. 122, no 30, p. 17211-17220Article in journal (Refereed) Published
Abstract [en]

Adsorption technologies offer opportunities to remove CO2 from gas mixtures, and zeolite A has good properties that include a high capacity for the adsorption of CO2 . It has been argued that its abilities to separate CO2 from N-2 in flue gas and CO2 from CH4 in raw biogas can be further enhanced by replacing Na+ with K+ in the controlling pore window apertures. In this study, several compositions of I Na12-xKxI-A were prepared and studied with respect to the adsorption of CO2 N-2, and CH4, and the detailed structural changes were induced by the adsorption of CO2. The adsorption of CO2 gradually decreased on an increasing content of K+, whereas the adsorption of N-2 and CH4 was completely nulled already at relatively small contents of K. Of the studied samples, INa9K3I-A exhibited the highest CO2 over N-2/CH4 selectivities, with a(CO2/N-2 ) > 21 000 and a(CO2/CH4) > 8000. For samples with and without adsorbed CO2 analyses of powder X-ray diffraction (PXRD) data revealed that K+ preferred to substitute Na+ at the eight-ring sites. The Na(+ )ions at the six-ring sites were gradually replaced by K+ on an increasing content, and these sites split into two positions on both sides of the six-ring mirror plane. It was observed that both the eight-ring and six-ring sites tailored the maximum adsorption capacity for CO2 and possibly also the diffusion of CO2 into the alpha-cavities of INa12-xKxI-A. The adsorption of CH4 and N-2 on the other hand appeared to be controlled by the K+ ions blocking the eight-ring windows. The in situ PXRD study revealed that the positions of the extra-framework cations were displaced into the a-cavities of INa12(_)x,KxI-A on the adsorption of CO2 . For samples with a low content of K+, the repositioning of the cations was consistent with a mutual attraction with the adsorbed CO(2 )molecules.

Place, publisher, year, edition, pages
2018. Vol. 122, no 30, p. 17211-17220
National Category
Chemical Sciences Nano Technology Materials Engineering
Research subject
Materials Chemistry
Identifiers
URN: urn:nbn:se:su:diva-158906DOI: 10.1021/acs.jpcc.8b03899ISI: 000440956200023OAI: oai:DiVA.org:su-158906DiVA, id: diva2:1240125
Available from: 2018-08-20 Created: 2018-08-20 Last updated: 2022-02-26Bibliographically approved
In thesis
1. The chemical nature of CO2 adsorption in zeolite A
Open this publication in new window or tab >>The chemical nature of CO2 adsorption in zeolite A
2019 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

The climate changes are accelerated by increasing levels of carbon dioxide in the atmosphere connected to the fossil-fuel-based energy system. Substantial reforms of the system are needed immediately and could include the implementation of carbon capture and storage (CCS) technologies. Adsorption-driven CO2 capture is one of the most promising post-combustion CO2 capture techniques, which aim to remove CO2 from N2 in flue gas.

The nature of adsorption of CO2 can vary. The process can act as physisorption with intermolecular interactions of the van der Waals type or as chemisorption with a significantly perturbed electronic structure of CO2 and for example the formation of CO32- and HCO3- species. The molecular details were elucidated by MAS NMR and IR studies for a zeolite, and the placement of adsorbed molecules was revealed by in situ diffraction data analysis.

Adsorption-driven processes can be implemented only if highly functional adsorbent materials have been developed. Zeolite A seems to be a promising candidate. This thesis broadly discussed the potential enhancement of the selectivity of CO2 over N2 and CH4 by replacing Na+ with larger monovalent cation e.g. K+ in pore apertures of zeolite A. The positions of the extra-framework cations were analyzed by in situ X-ray diffraction using synchrotron light source. The cations were positioned at the 4- and 6-rings and the 8-ring apertures of the aluminosilicate framework of zeolite A. K+ was favored at the 8-ring sites, and this cation did also gradually substitute the 6-ring sites with and increasing x in |Na12-xKx|-A. Large cations did not fit the mirror plane of the 6-ring and were placed on both its sides. K+ at both positions, in 8-rings and 6-rings, seems to have tailored the size of pore openings.

The effective pore aperture size was shown to depend on the K+ content and to partition small CO2 molecules from large N2 and CH4 because of, likely, differences in diffusivities. Various compositions of |Na12-xKx|-A demonstrated gradual decrease of CO2 uptake with x and an exclusion of N2 and CH4 already for low x. Although already absorbed CO2 molecules were revealed by in situ neutron diffraction to be coordinated mainly by the 8-ring cation or bridging adjacent 8-ring sites. Adsorbed CO2 molecules displaced the cations into the a-cages and resulted in a slight contraction of the overall distribution of extra-framework cations upon the adsorption of CO2.

The kinetically-enhanced separation of CO2 from N2/CH4 seemed to be associated by a restrained diffusion also for the CO2 molecules. This is problematic for pressure swing adsorption processes. However, it could potentially be addressed by the reduction of size of zeolite crystals to increase the extent of accessible porous space over limited time.

Place, publisher, year, edition, pages
Stockholm: Department of Materials and Environmental Chemistry, Stockholm University, 2019. p. 78
Keywords
CO2 adsorption, flue gas CO2 capture, biogas upgrading, zeolite |NaK|-A, physisorption, chemisorption, kinetic separation, in situ diffraction, synchrotron XRD, NPD, NMR, IR
National Category
Materials Chemistry
Research subject
Materials Chemistry
Identifiers
urn:nbn:se:su:diva-162364 (URN)978-91-7797-438-3 (ISBN)978-91-7797-439-0 (ISBN)
Public defence
2019-01-11, Magnélisalen, Kemiska övningslaboratoriet, Svante Arrhenius väg 16 B, Stockholm, 13:00 (English)
Opponent
Supervisors
Note

At the time of the doctoral defense, the following papers were unpublished and had a status as follows: Paper 3: Submitted. Paper 4: In press. Paper 5: Submitted.

Available from: 2018-12-19 Created: 2018-11-27 Last updated: 2022-02-26

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Rzepka, PrzemyslawSmeets, StefZou, XiaodongHedin, Niklas

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