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Metal cation substitution can tune CO(2), H(2)O and CH(4) switching pressure in transiently porous coordination networks

Compared to rigid physisorbents, switching coordination networks that reversibly transform between closed (non-porous) and open (porous) phases offer promise for gas/vapour storage and separation owing to their improved working capacity and desirable thermal management properties. We recently introd...

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Autores principales: Nikolayenko, Varvara I., Castell, Dominic C., Sensharma, Debobroto, Shivanna, Mohana, Loots, Leigh, Otake, Ken-ichi, Kitagawa, Susumu, Barbour, Leonard J., Zaworotko, Michael J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10394667/
https://www.ncbi.nlm.nih.gov/pubmed/38013758
http://dx.doi.org/10.1039/d3ta03300g
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author Nikolayenko, Varvara I.
Castell, Dominic C.
Sensharma, Debobroto
Shivanna, Mohana
Loots, Leigh
Otake, Ken-ichi
Kitagawa, Susumu
Barbour, Leonard J.
Zaworotko, Michael J.
author_facet Nikolayenko, Varvara I.
Castell, Dominic C.
Sensharma, Debobroto
Shivanna, Mohana
Loots, Leigh
Otake, Ken-ichi
Kitagawa, Susumu
Barbour, Leonard J.
Zaworotko, Michael J.
author_sort Nikolayenko, Varvara I.
collection PubMed
description Compared to rigid physisorbents, switching coordination networks that reversibly transform between closed (non-porous) and open (porous) phases offer promise for gas/vapour storage and separation owing to their improved working capacity and desirable thermal management properties. We recently introduced a coordination network, X-dmp-1-Co, which exhibits switching enabled by transient porosity. The resulting “open” phases are generated at threshold pressures even though they are conventionally non-porous. Herein, we report that X-dmp-1-Co is the parent member of a family of transiently porous coordination networks [X-dmp-1-M] (M = Co, Zn and Cd) and that each exhibits transient porosity but switching events occur at different threshold pressures for CO(2) (0.8, 2.1 and 15 mbar, for Co, Zn and Cd, respectively, at 195 K), H(2)O (10, 70 and 75% RH, for Co, Zn and Cd, respectively, at 300 K) and CH(4) (<2, 10 and 25 bar, for Co, Zn and Cd, respectively, at 298 K). Insight into the phase changes is provided through in situ SCXRD and in situ PXRD. We attribute the tuning of gate-opening pressure to differences and changes in the metal coordination spheres and how they impact dpt ligand rotation. X-dmp-1-Zn and X-dmp-1-Cd join a small number of coordination networks (<10) that exhibit reversible switching for CH(4) between 5 and 35 bar, a key requirement for adsorbed natural gas storage.
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spelling pubmed-103946672023-08-03 Metal cation substitution can tune CO(2), H(2)O and CH(4) switching pressure in transiently porous coordination networks Nikolayenko, Varvara I. Castell, Dominic C. Sensharma, Debobroto Shivanna, Mohana Loots, Leigh Otake, Ken-ichi Kitagawa, Susumu Barbour, Leonard J. Zaworotko, Michael J. J Mater Chem A Mater Chemistry Compared to rigid physisorbents, switching coordination networks that reversibly transform between closed (non-porous) and open (porous) phases offer promise for gas/vapour storage and separation owing to their improved working capacity and desirable thermal management properties. We recently introduced a coordination network, X-dmp-1-Co, which exhibits switching enabled by transient porosity. The resulting “open” phases are generated at threshold pressures even though they are conventionally non-porous. Herein, we report that X-dmp-1-Co is the parent member of a family of transiently porous coordination networks [X-dmp-1-M] (M = Co, Zn and Cd) and that each exhibits transient porosity but switching events occur at different threshold pressures for CO(2) (0.8, 2.1 and 15 mbar, for Co, Zn and Cd, respectively, at 195 K), H(2)O (10, 70 and 75% RH, for Co, Zn and Cd, respectively, at 300 K) and CH(4) (<2, 10 and 25 bar, for Co, Zn and Cd, respectively, at 298 K). Insight into the phase changes is provided through in situ SCXRD and in situ PXRD. We attribute the tuning of gate-opening pressure to differences and changes in the metal coordination spheres and how they impact dpt ligand rotation. X-dmp-1-Zn and X-dmp-1-Cd join a small number of coordination networks (<10) that exhibit reversible switching for CH(4) between 5 and 35 bar, a key requirement for adsorbed natural gas storage. The Royal Society of Chemistry 2023-07-18 /pmc/articles/PMC10394667/ /pubmed/38013758 http://dx.doi.org/10.1039/d3ta03300g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Nikolayenko, Varvara I.
Castell, Dominic C.
Sensharma, Debobroto
Shivanna, Mohana
Loots, Leigh
Otake, Ken-ichi
Kitagawa, Susumu
Barbour, Leonard J.
Zaworotko, Michael J.
Metal cation substitution can tune CO(2), H(2)O and CH(4) switching pressure in transiently porous coordination networks
title Metal cation substitution can tune CO(2), H(2)O and CH(4) switching pressure in transiently porous coordination networks
title_full Metal cation substitution can tune CO(2), H(2)O and CH(4) switching pressure in transiently porous coordination networks
title_fullStr Metal cation substitution can tune CO(2), H(2)O and CH(4) switching pressure in transiently porous coordination networks
title_full_unstemmed Metal cation substitution can tune CO(2), H(2)O and CH(4) switching pressure in transiently porous coordination networks
title_short Metal cation substitution can tune CO(2), H(2)O and CH(4) switching pressure in transiently porous coordination networks
title_sort metal cation substitution can tune co(2), h(2)o and ch(4) switching pressure in transiently porous coordination networks
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10394667/
https://www.ncbi.nlm.nih.gov/pubmed/38013758
http://dx.doi.org/10.1039/d3ta03300g
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