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The Anisotropic Responses of a Flexible Metal–Organic Framework Constructed from Asymmetric Flexible Linkers and Heptanuclear Zinc Carboxylate Secondary Building Units

[Image: see text] A new porous and flexible metal–organic framework (MOF) has been synthesized from the flexible asymmetric linker N-(4-carboxyphenyl)succinamate (CSA) and heptanuclear zinc oxo-clusters of formula [Zn(7)O(2)(carboxylate)(10)DMF(2)] involving two coordinated terminal DMF ligands. The...

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Autores principales: Carrington, Elliot J., Pétuya, Rémi, Hylton, Rebecca K., Yan, Yong, Antypov, Dmytro, Darling, George R., Dyer, Matthew S., Berry, Neil G., Katsoulidis, Alexandros P., Rosseinsky, Matthew J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6778970/
https://www.ncbi.nlm.nih.gov/pubmed/31602177
http://dx.doi.org/10.1021/acs.cgd.9b00558
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author Carrington, Elliot J.
Pétuya, Rémi
Hylton, Rebecca K.
Yan, Yong
Antypov, Dmytro
Darling, George R.
Dyer, Matthew S.
Berry, Neil G.
Katsoulidis, Alexandros P.
Rosseinsky, Matthew J.
author_facet Carrington, Elliot J.
Pétuya, Rémi
Hylton, Rebecca K.
Yan, Yong
Antypov, Dmytro
Darling, George R.
Dyer, Matthew S.
Berry, Neil G.
Katsoulidis, Alexandros P.
Rosseinsky, Matthew J.
author_sort Carrington, Elliot J.
collection PubMed
description [Image: see text] A new porous and flexible metal–organic framework (MOF) has been synthesized from the flexible asymmetric linker N-(4-carboxyphenyl)succinamate (CSA) and heptanuclear zinc oxo-clusters of formula [Zn(7)O(2)(carboxylate)(10)DMF(2)] involving two coordinated terminal DMF ligands. The structural response of this MOF to the removal or exchange of its guest molecules has been probed using a combination of experimental and computational approaches. The topology of the material, involving double linker connections in the a and b directions and single linker connections along the c axis, is shown to be key in the material’s anisotropic response. The a and b directions remain locked during guest removal, whereas the c axis linker undergoes large changes significantly reducing the material’s void space. The changes to the c axis linker involve a combination of a hinge motion on the linker’s rigid side and conformational rearrangements on its flexible end, which were probed in detail during this process despite the presence of crystallographic disorder along this axis, which prevented accurate characterization by experimental methods alone. Although inactive during guest removal, the flexible ends of the a and b axis linkers are observed to play a prominent role during DMF to DMSO solvent exchange, facilitating the exchange reaction arising in the cluster.
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spelling pubmed-67789702019-10-08 The Anisotropic Responses of a Flexible Metal–Organic Framework Constructed from Asymmetric Flexible Linkers and Heptanuclear Zinc Carboxylate Secondary Building Units Carrington, Elliot J. Pétuya, Rémi Hylton, Rebecca K. Yan, Yong Antypov, Dmytro Darling, George R. Dyer, Matthew S. Berry, Neil G. Katsoulidis, Alexandros P. Rosseinsky, Matthew J. Cryst Growth Des [Image: see text] A new porous and flexible metal–organic framework (MOF) has been synthesized from the flexible asymmetric linker N-(4-carboxyphenyl)succinamate (CSA) and heptanuclear zinc oxo-clusters of formula [Zn(7)O(2)(carboxylate)(10)DMF(2)] involving two coordinated terminal DMF ligands. The structural response of this MOF to the removal or exchange of its guest molecules has been probed using a combination of experimental and computational approaches. The topology of the material, involving double linker connections in the a and b directions and single linker connections along the c axis, is shown to be key in the material’s anisotropic response. The a and b directions remain locked during guest removal, whereas the c axis linker undergoes large changes significantly reducing the material’s void space. The changes to the c axis linker involve a combination of a hinge motion on the linker’s rigid side and conformational rearrangements on its flexible end, which were probed in detail during this process despite the presence of crystallographic disorder along this axis, which prevented accurate characterization by experimental methods alone. Although inactive during guest removal, the flexible ends of the a and b axis linkers are observed to play a prominent role during DMF to DMSO solvent exchange, facilitating the exchange reaction arising in the cluster. American Chemical Society 2019-08-21 2019-10-02 /pmc/articles/PMC6778970/ /pubmed/31602177 http://dx.doi.org/10.1021/acs.cgd.9b00558 Text en Copyright © 2019 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Carrington, Elliot J.
Pétuya, Rémi
Hylton, Rebecca K.
Yan, Yong
Antypov, Dmytro
Darling, George R.
Dyer, Matthew S.
Berry, Neil G.
Katsoulidis, Alexandros P.
Rosseinsky, Matthew J.
The Anisotropic Responses of a Flexible Metal–Organic Framework Constructed from Asymmetric Flexible Linkers and Heptanuclear Zinc Carboxylate Secondary Building Units
title The Anisotropic Responses of a Flexible Metal–Organic Framework Constructed from Asymmetric Flexible Linkers and Heptanuclear Zinc Carboxylate Secondary Building Units
title_full The Anisotropic Responses of a Flexible Metal–Organic Framework Constructed from Asymmetric Flexible Linkers and Heptanuclear Zinc Carboxylate Secondary Building Units
title_fullStr The Anisotropic Responses of a Flexible Metal–Organic Framework Constructed from Asymmetric Flexible Linkers and Heptanuclear Zinc Carboxylate Secondary Building Units
title_full_unstemmed The Anisotropic Responses of a Flexible Metal–Organic Framework Constructed from Asymmetric Flexible Linkers and Heptanuclear Zinc Carboxylate Secondary Building Units
title_short The Anisotropic Responses of a Flexible Metal–Organic Framework Constructed from Asymmetric Flexible Linkers and Heptanuclear Zinc Carboxylate Secondary Building Units
title_sort anisotropic responses of a flexible metal–organic framework constructed from asymmetric flexible linkers and heptanuclear zinc carboxylate secondary building units
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6778970/
https://www.ncbi.nlm.nih.gov/pubmed/31602177
http://dx.doi.org/10.1021/acs.cgd.9b00558
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