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Post‐Synthetic Mannich Chemistry on Metal‐Organic Frameworks: System‐Specific Reactivity and Functionality‐Triggered Dissolution

The Mannich reaction of the zirconium MOF [Zr(6)O(4)(OH)(4)(bdc‐NH(2))(6)] (UiO‐66‐NH(2), bdc‐NH(2)=2‐amino‐1,4‐benzenedicarboxylate) with paraformaldehyde and pyrazole, imidazole or 2‐mercaptoimidazole led to post‐synthetic modification (PSM) through C−N bond formation. The reaction with imidazole...

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Autores principales: Amer Hamzah, Harina, Gee, William J., Raithby, Paul R., Teat, Simon J., Mahon, Mary F., Burrows, Andrew D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6099314/
https://www.ncbi.nlm.nih.gov/pubmed/29808942
http://dx.doi.org/10.1002/chem.201801419
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author Amer Hamzah, Harina
Gee, William J.
Raithby, Paul R.
Teat, Simon J.
Mahon, Mary F.
Burrows, Andrew D.
author_facet Amer Hamzah, Harina
Gee, William J.
Raithby, Paul R.
Teat, Simon J.
Mahon, Mary F.
Burrows, Andrew D.
author_sort Amer Hamzah, Harina
collection PubMed
description The Mannich reaction of the zirconium MOF [Zr(6)O(4)(OH)(4)(bdc‐NH(2))(6)] (UiO‐66‐NH(2), bdc‐NH(2)=2‐amino‐1,4‐benzenedicarboxylate) with paraformaldehyde and pyrazole, imidazole or 2‐mercaptoimidazole led to post‐synthetic modification (PSM) through C−N bond formation. The reaction with imidazole (Him) goes to completion whereas those with pyrazole (Hpyz) and 2‐mercaptoimidazole (HimSH) give up to 41 and 36 % conversion, respectively. The BET surface areas for the Mannich products are reduced from that of UiO‐66‐NH(2), but the compounds show enhanced selectivity for adsorption of CO(2) over N(2) at 273 K. The thiol‐containing MOFs adsorb mercury(II) ions from aqueous solution, removing up to 99 %. The Mannich reaction with pyrazole succeeds on [Zn(4)O(bdc‐NH(2))(3)] (IRMOF‐3), but a similar reaction on [Zn(2)(bdc‐NH(2))(2)(dabco)] (dabco=1,4‐diazabicyclo[2.2.2]octane) gave [Zn(3)(bdc‐NH(2))(1.32)(bdc‐NHCH(2)pyz)(1.68)(dabco)]⋅2 C(7)H(8) 5, whereas the reaction with imidazole gave the expected PSM product. Compound 5 forms via a dissolution–recrystallisation process that is triggered by the “free” pyrazolate nitrogen atom competing with dabco for coordination to the zinc(II) centre. In contrast, the “free” nitrogen atom on the imidazolate is too far away to compete in this way. Mannich reactions on [In(OH)(bdc‐NH(2))] (MIL‐68(In)‐NH(2)) stop after the first step, and the product was identified as [In(OH)(bdc‐NH(2))(0.41)(bdc‐NHCH(2)OCH(3))(0.30)(bdc‐N=CH(2))(0.29)], with addition of the heterocycle prevented by steric interactions.
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spelling pubmed-60993142018-08-23 Post‐Synthetic Mannich Chemistry on Metal‐Organic Frameworks: System‐Specific Reactivity and Functionality‐Triggered Dissolution Amer Hamzah, Harina Gee, William J. Raithby, Paul R. Teat, Simon J. Mahon, Mary F. Burrows, Andrew D. Chemistry Full Papers The Mannich reaction of the zirconium MOF [Zr(6)O(4)(OH)(4)(bdc‐NH(2))(6)] (UiO‐66‐NH(2), bdc‐NH(2)=2‐amino‐1,4‐benzenedicarboxylate) with paraformaldehyde and pyrazole, imidazole or 2‐mercaptoimidazole led to post‐synthetic modification (PSM) through C−N bond formation. The reaction with imidazole (Him) goes to completion whereas those with pyrazole (Hpyz) and 2‐mercaptoimidazole (HimSH) give up to 41 and 36 % conversion, respectively. The BET surface areas for the Mannich products are reduced from that of UiO‐66‐NH(2), but the compounds show enhanced selectivity for adsorption of CO(2) over N(2) at 273 K. The thiol‐containing MOFs adsorb mercury(II) ions from aqueous solution, removing up to 99 %. The Mannich reaction with pyrazole succeeds on [Zn(4)O(bdc‐NH(2))(3)] (IRMOF‐3), but a similar reaction on [Zn(2)(bdc‐NH(2))(2)(dabco)] (dabco=1,4‐diazabicyclo[2.2.2]octane) gave [Zn(3)(bdc‐NH(2))(1.32)(bdc‐NHCH(2)pyz)(1.68)(dabco)]⋅2 C(7)H(8) 5, whereas the reaction with imidazole gave the expected PSM product. Compound 5 forms via a dissolution–recrystallisation process that is triggered by the “free” pyrazolate nitrogen atom competing with dabco for coordination to the zinc(II) centre. In contrast, the “free” nitrogen atom on the imidazolate is too far away to compete in this way. Mannich reactions on [In(OH)(bdc‐NH(2))] (MIL‐68(In)‐NH(2)) stop after the first step, and the product was identified as [In(OH)(bdc‐NH(2))(0.41)(bdc‐NHCH(2)OCH(3))(0.30)(bdc‐N=CH(2))(0.29)], with addition of the heterocycle prevented by steric interactions. John Wiley and Sons Inc. 2018-06-26 2018-08-01 /pmc/articles/PMC6099314/ /pubmed/29808942 http://dx.doi.org/10.1002/chem.201801419 Text en © 2018 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the http://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
Amer Hamzah, Harina
Gee, William J.
Raithby, Paul R.
Teat, Simon J.
Mahon, Mary F.
Burrows, Andrew D.
Post‐Synthetic Mannich Chemistry on Metal‐Organic Frameworks: System‐Specific Reactivity and Functionality‐Triggered Dissolution
title Post‐Synthetic Mannich Chemistry on Metal‐Organic Frameworks: System‐Specific Reactivity and Functionality‐Triggered Dissolution
title_full Post‐Synthetic Mannich Chemistry on Metal‐Organic Frameworks: System‐Specific Reactivity and Functionality‐Triggered Dissolution
title_fullStr Post‐Synthetic Mannich Chemistry on Metal‐Organic Frameworks: System‐Specific Reactivity and Functionality‐Triggered Dissolution
title_full_unstemmed Post‐Synthetic Mannich Chemistry on Metal‐Organic Frameworks: System‐Specific Reactivity and Functionality‐Triggered Dissolution
title_short Post‐Synthetic Mannich Chemistry on Metal‐Organic Frameworks: System‐Specific Reactivity and Functionality‐Triggered Dissolution
title_sort post‐synthetic mannich chemistry on metal‐organic frameworks: system‐specific reactivity and functionality‐triggered dissolution
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6099314/
https://www.ncbi.nlm.nih.gov/pubmed/29808942
http://dx.doi.org/10.1002/chem.201801419
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