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Cation Ordering and Exsolution in Copper‐Containing Forms of the Flexible Zeolite Rho (Cu,M‐Rho; M=H, Na) and Their Consequences for CO(2) Adsorption

The flexibility of the zeolite Rho framework offers great potential for tunable molecular sieving. The fully copper‐exchanged form of Rho and mixed Cu,H‐ and Cu,Na‐forms have been prepared. EPR spectroscopy reveals that Cu(2+) ions are present in the dehydrated forms and Rietveld refinement shows th...

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Autores principales: Lozinska, Magdalena M., Jamieson, Sophie, Verbraeken, Maarten C., Miller, David N., Bode, Bela E., Murray, Claire A., Brandani, Stefano, Wright, Paul A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8518693/
https://www.ncbi.nlm.nih.gov/pubmed/34213033
http://dx.doi.org/10.1002/chem.202101664
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author Lozinska, Magdalena M.
Jamieson, Sophie
Verbraeken, Maarten C.
Miller, David N.
Bode, Bela E.
Murray, Claire A.
Brandani, Stefano
Wright, Paul A.
author_facet Lozinska, Magdalena M.
Jamieson, Sophie
Verbraeken, Maarten C.
Miller, David N.
Bode, Bela E.
Murray, Claire A.
Brandani, Stefano
Wright, Paul A.
author_sort Lozinska, Magdalena M.
collection PubMed
description The flexibility of the zeolite Rho framework offers great potential for tunable molecular sieving. The fully copper‐exchanged form of Rho and mixed Cu,H‐ and Cu,Na‐forms have been prepared. EPR spectroscopy reveals that Cu(2+) ions are present in the dehydrated forms and Rietveld refinement shows these prefer S6R sites, away from the d8r windows that control diffusion. Fully exchanged Cu‐Rho remains in an open form upon dehydration, the d8r windows remain nearly circular and the occupancy of window sites is low, so that it adsorbs CO(2) rapidly at room temperature. Breakthrough tests with 10 % CO(2)/40 % CH(4) mixtures show that Cu(4.9)‐Rho is able to produce pure methane, albeit with a relatively low capacity at this p(CO2) due to the weak interaction of CO(2) with Cu cations. This is in strong contrast to Na‐Rho, where cations in narrow elliptical window sites enable CO(2) to be adsorbed with high selectivity and uptake but too slowly to enable the production of pure methane in similar breakthrough experiments. A series of Cu,Na‐Rho materials was prepared to improve uptake and selectivity compared to Cu‐Rho, and kinetics compared to Na‐Rho. Remarkably, Cu,Na‐Rho with >2 Cu cations per unit cell exhibited exsolution, due to the preference of Na cations for narrow S8R sites in distorted Rho and of Cu cations for S6R sites in the centric, open form of Rho. The exsolved Cu,Na‐Rho showed improved performance in CO(2)/CH(4) breakthrough tests, producing pure CH(4) with improved uptake and CO(2)/CH(4) selectivity compared to that of Cu(4.9)‐Rho.
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spelling pubmed-85186932021-10-21 Cation Ordering and Exsolution in Copper‐Containing Forms of the Flexible Zeolite Rho (Cu,M‐Rho; M=H, Na) and Their Consequences for CO(2) Adsorption Lozinska, Magdalena M. Jamieson, Sophie Verbraeken, Maarten C. Miller, David N. Bode, Bela E. Murray, Claire A. Brandani, Stefano Wright, Paul A. Chemistry Full Papers The flexibility of the zeolite Rho framework offers great potential for tunable molecular sieving. The fully copper‐exchanged form of Rho and mixed Cu,H‐ and Cu,Na‐forms have been prepared. EPR spectroscopy reveals that Cu(2+) ions are present in the dehydrated forms and Rietveld refinement shows these prefer S6R sites, away from the d8r windows that control diffusion. Fully exchanged Cu‐Rho remains in an open form upon dehydration, the d8r windows remain nearly circular and the occupancy of window sites is low, so that it adsorbs CO(2) rapidly at room temperature. Breakthrough tests with 10 % CO(2)/40 % CH(4) mixtures show that Cu(4.9)‐Rho is able to produce pure methane, albeit with a relatively low capacity at this p(CO2) due to the weak interaction of CO(2) with Cu cations. This is in strong contrast to Na‐Rho, where cations in narrow elliptical window sites enable CO(2) to be adsorbed with high selectivity and uptake but too slowly to enable the production of pure methane in similar breakthrough experiments. A series of Cu,Na‐Rho materials was prepared to improve uptake and selectivity compared to Cu‐Rho, and kinetics compared to Na‐Rho. Remarkably, Cu,Na‐Rho with >2 Cu cations per unit cell exhibited exsolution, due to the preference of Na cations for narrow S8R sites in distorted Rho and of Cu cations for S6R sites in the centric, open form of Rho. The exsolved Cu,Na‐Rho showed improved performance in CO(2)/CH(4) breakthrough tests, producing pure CH(4) with improved uptake and CO(2)/CH(4) selectivity compared to that of Cu(4.9)‐Rho. John Wiley and Sons Inc. 2021-08-06 2021-09-09 /pmc/articles/PMC8518693/ /pubmed/34213033 http://dx.doi.org/10.1002/chem.202101664 Text en © 2021 The Authors. Chemistry - A European Journal published by Wiley-VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Lozinska, Magdalena M.
Jamieson, Sophie
Verbraeken, Maarten C.
Miller, David N.
Bode, Bela E.
Murray, Claire A.
Brandani, Stefano
Wright, Paul A.
Cation Ordering and Exsolution in Copper‐Containing Forms of the Flexible Zeolite Rho (Cu,M‐Rho; M=H, Na) and Their Consequences for CO(2) Adsorption
title Cation Ordering and Exsolution in Copper‐Containing Forms of the Flexible Zeolite Rho (Cu,M‐Rho; M=H, Na) and Their Consequences for CO(2) Adsorption
title_full Cation Ordering and Exsolution in Copper‐Containing Forms of the Flexible Zeolite Rho (Cu,M‐Rho; M=H, Na) and Their Consequences for CO(2) Adsorption
title_fullStr Cation Ordering and Exsolution in Copper‐Containing Forms of the Flexible Zeolite Rho (Cu,M‐Rho; M=H, Na) and Their Consequences for CO(2) Adsorption
title_full_unstemmed Cation Ordering and Exsolution in Copper‐Containing Forms of the Flexible Zeolite Rho (Cu,M‐Rho; M=H, Na) and Their Consequences for CO(2) Adsorption
title_short Cation Ordering and Exsolution in Copper‐Containing Forms of the Flexible Zeolite Rho (Cu,M‐Rho; M=H, Na) and Their Consequences for CO(2) Adsorption
title_sort cation ordering and exsolution in copper‐containing forms of the flexible zeolite rho (cu,m‐rho; m=h, na) and their consequences for co(2) adsorption
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8518693/
https://www.ncbi.nlm.nih.gov/pubmed/34213033
http://dx.doi.org/10.1002/chem.202101664
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