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CO(2) induced phase transitions in diamine-appended metal–organic frameworks

Using a combination of density functional theory and lattice models, we study the effect of CO(2) adsorption in an amine functionalized metal–organic framework. These materials exhibit a step in the adsorption isotherm indicative of a phase change. The pressure at which this step occurs is not only...

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Autores principales: Vlaisavljevich, Bess, Odoh, Samuel O., Schnell, Sondre K., Dzubak, Allison L., Lee, Kyuho, Planas, Nora, Neaton, Jeffrey B., Gagliardi, Laura, Smit, Berend
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5500831/
https://www.ncbi.nlm.nih.gov/pubmed/28717499
http://dx.doi.org/10.1039/c5sc01828e
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author Vlaisavljevich, Bess
Odoh, Samuel O.
Schnell, Sondre K.
Dzubak, Allison L.
Lee, Kyuho
Planas, Nora
Neaton, Jeffrey B.
Gagliardi, Laura
Smit, Berend
author_facet Vlaisavljevich, Bess
Odoh, Samuel O.
Schnell, Sondre K.
Dzubak, Allison L.
Lee, Kyuho
Planas, Nora
Neaton, Jeffrey B.
Gagliardi, Laura
Smit, Berend
author_sort Vlaisavljevich, Bess
collection PubMed
description Using a combination of density functional theory and lattice models, we study the effect of CO(2) adsorption in an amine functionalized metal–organic framework. These materials exhibit a step in the adsorption isotherm indicative of a phase change. The pressure at which this step occurs is not only temperature dependent but is also metal center dependent. Likewise, the heats of adsorption vary depending on the metal center. Herein we demonstrate via quantum chemical calculations that the amines should not be considered firmly anchored to the framework and we explore the mechanism for CO(2) adsorption. An ammonium carbamate species is formed via the insertion of CO(2) into the M–N(amine) bonds. Furthermore, we translate the quantum chemical results into isotherms using a coarse grained Monte Carlo simulation technique and show that this adsorption mechanism can explain the characteristic step observed in the experimental isotherm while a previously proposed mechanism cannot. Furthermore, metal analogues have been explored and the CO(2) binding energies show a strong metal dependence corresponding to the M–N(amine) bond strength. We show that this difference can be exploited to tune the pressure at which the step in the isotherm occurs. Additionally, the mmen–Ni(2)(dobpdc) framework shows Langmuir like behavior, and our simulations show how this can be explained by competitive adsorption between the new model and a previously proposed model.
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spelling pubmed-55008312017-07-17 CO(2) induced phase transitions in diamine-appended metal–organic frameworks Vlaisavljevich, Bess Odoh, Samuel O. Schnell, Sondre K. Dzubak, Allison L. Lee, Kyuho Planas, Nora Neaton, Jeffrey B. Gagliardi, Laura Smit, Berend Chem Sci Chemistry Using a combination of density functional theory and lattice models, we study the effect of CO(2) adsorption in an amine functionalized metal–organic framework. These materials exhibit a step in the adsorption isotherm indicative of a phase change. The pressure at which this step occurs is not only temperature dependent but is also metal center dependent. Likewise, the heats of adsorption vary depending on the metal center. Herein we demonstrate via quantum chemical calculations that the amines should not be considered firmly anchored to the framework and we explore the mechanism for CO(2) adsorption. An ammonium carbamate species is formed via the insertion of CO(2) into the M–N(amine) bonds. Furthermore, we translate the quantum chemical results into isotherms using a coarse grained Monte Carlo simulation technique and show that this adsorption mechanism can explain the characteristic step observed in the experimental isotherm while a previously proposed mechanism cannot. Furthermore, metal analogues have been explored and the CO(2) binding energies show a strong metal dependence corresponding to the M–N(amine) bond strength. We show that this difference can be exploited to tune the pressure at which the step in the isotherm occurs. Additionally, the mmen–Ni(2)(dobpdc) framework shows Langmuir like behavior, and our simulations show how this can be explained by competitive adsorption between the new model and a previously proposed model. Royal Society of Chemistry 2015-09-01 2015-06-17 /pmc/articles/PMC5500831/ /pubmed/28717499 http://dx.doi.org/10.1039/c5sc01828e Text en This journal is © The Royal Society of Chemistry 2015 https://creativecommons.org/licenses/by/3.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/by/3.0/ (https://creativecommons.org/licenses/by/3.0/) ) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Vlaisavljevich, Bess
Odoh, Samuel O.
Schnell, Sondre K.
Dzubak, Allison L.
Lee, Kyuho
Planas, Nora
Neaton, Jeffrey B.
Gagliardi, Laura
Smit, Berend
CO(2) induced phase transitions in diamine-appended metal–organic frameworks
title CO(2) induced phase transitions in diamine-appended metal–organic frameworks
title_full CO(2) induced phase transitions in diamine-appended metal–organic frameworks
title_fullStr CO(2) induced phase transitions in diamine-appended metal–organic frameworks
title_full_unstemmed CO(2) induced phase transitions in diamine-appended metal–organic frameworks
title_short CO(2) induced phase transitions in diamine-appended metal–organic frameworks
title_sort co(2) induced phase transitions in diamine-appended metal–organic frameworks
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5500831/
https://www.ncbi.nlm.nih.gov/pubmed/28717499
http://dx.doi.org/10.1039/c5sc01828e
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