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POMzites: A Family of Zeolitic Polyoxometalate Frameworks from a Minimal Building Block Library

[Image: see text] We describe why the cyclic heteropolyanion [P(8)W(48)O(184)](40–) (abbreviated as {P(8)W(48)}) is an ideal building block for the construction of intrinsically porous framework materials by classifying and analyzing >30 coordination polymers incorporating this polyoxometalate (P...

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Autores principales: Boyd, Thomas, Mitchell, Scott G., Gabb, David, Long, De-Liang, Song, Yu-Fei, Cronin, Leroy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5423706/
https://www.ncbi.nlm.nih.gov/pubmed/28368582
http://dx.doi.org/10.1021/jacs.7b01807
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author Boyd, Thomas
Mitchell, Scott G.
Gabb, David
Long, De-Liang
Song, Yu-Fei
Cronin, Leroy
author_facet Boyd, Thomas
Mitchell, Scott G.
Gabb, David
Long, De-Liang
Song, Yu-Fei
Cronin, Leroy
author_sort Boyd, Thomas
collection PubMed
description [Image: see text] We describe why the cyclic heteropolyanion [P(8)W(48)O(184)](40–) (abbreviated as {P(8)W(48)}) is an ideal building block for the construction of intrinsically porous framework materials by classifying and analyzing >30 coordination polymers incorporating this polyoxometalate (POM) ligand. This analysis shows that the exocyclic coordination of first-row transition metals (TMs) to {P(8)W(48)} typically yields frameworks which extend through {W–O–TM–O–W} bridges in one, two, or three dimensions. However, despite the rich structural diversity of such compounds, the coordination of TMs to the {P(8)W(48)} ring is poorly understood, and therefore largely unpredictable, and had not until now been present with any structural classification that could allow rational design. Herein, not only do we present a new approach to understand and classify this new class of materials, we also present three {P(8)W(48)}-based frameworks which complement those frameworks which have previously been described. These new compounds help us postulate a new taxonomy of these materials. This is possible because the TM coordination sites of the {P(8)W(48)} ring are found, once fully mapped, to lead to well-defined classes of connectivity. Together, analysis provides insight into the nature of the building block connectivity within each framework, to facilitate comparisons between related structures, and to fundamentally unite this family of compounds. Hence we have tentatively named these compounds as “POMzites” to reflect the POM-based composition and zeolitic nature of each family member, although crucially, POMzites differ from zeolites in the modular manner of their preparation. As the synthesis of further POMzites is anticipated, the classification system and terminology introduced here will allow new compounds to be categorized and understood in the context of the established materials. A better understanding of TM coordination to the {P(8)W(48)} ring may allow the targeted synthesis of new frameworks rather than the reliance on serendipity apparent in current methods.
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spelling pubmed-54237062017-05-10 POMzites: A Family of Zeolitic Polyoxometalate Frameworks from a Minimal Building Block Library Boyd, Thomas Mitchell, Scott G. Gabb, David Long, De-Liang Song, Yu-Fei Cronin, Leroy J Am Chem Soc [Image: see text] We describe why the cyclic heteropolyanion [P(8)W(48)O(184)](40–) (abbreviated as {P(8)W(48)}) is an ideal building block for the construction of intrinsically porous framework materials by classifying and analyzing >30 coordination polymers incorporating this polyoxometalate (POM) ligand. This analysis shows that the exocyclic coordination of first-row transition metals (TMs) to {P(8)W(48)} typically yields frameworks which extend through {W–O–TM–O–W} bridges in one, two, or three dimensions. However, despite the rich structural diversity of such compounds, the coordination of TMs to the {P(8)W(48)} ring is poorly understood, and therefore largely unpredictable, and had not until now been present with any structural classification that could allow rational design. Herein, not only do we present a new approach to understand and classify this new class of materials, we also present three {P(8)W(48)}-based frameworks which complement those frameworks which have previously been described. These new compounds help us postulate a new taxonomy of these materials. This is possible because the TM coordination sites of the {P(8)W(48)} ring are found, once fully mapped, to lead to well-defined classes of connectivity. Together, analysis provides insight into the nature of the building block connectivity within each framework, to facilitate comparisons between related structures, and to fundamentally unite this family of compounds. Hence we have tentatively named these compounds as “POMzites” to reflect the POM-based composition and zeolitic nature of each family member, although crucially, POMzites differ from zeolites in the modular manner of their preparation. As the synthesis of further POMzites is anticipated, the classification system and terminology introduced here will allow new compounds to be categorized and understood in the context of the established materials. A better understanding of TM coordination to the {P(8)W(48)} ring may allow the targeted synthesis of new frameworks rather than the reliance on serendipity apparent in current methods. American Chemical Society 2017-04-03 2017-04-26 /pmc/articles/PMC5423706/ /pubmed/28368582 http://dx.doi.org/10.1021/jacs.7b01807 Text en Copyright © 2017 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 Boyd, Thomas
Mitchell, Scott G.
Gabb, David
Long, De-Liang
Song, Yu-Fei
Cronin, Leroy
POMzites: A Family of Zeolitic Polyoxometalate Frameworks from a Minimal Building Block Library
title POMzites: A Family of Zeolitic Polyoxometalate Frameworks from a Minimal Building Block Library
title_full POMzites: A Family of Zeolitic Polyoxometalate Frameworks from a Minimal Building Block Library
title_fullStr POMzites: A Family of Zeolitic Polyoxometalate Frameworks from a Minimal Building Block Library
title_full_unstemmed POMzites: A Family of Zeolitic Polyoxometalate Frameworks from a Minimal Building Block Library
title_short POMzites: A Family of Zeolitic Polyoxometalate Frameworks from a Minimal Building Block Library
title_sort pomzites: a family of zeolitic polyoxometalate frameworks from a minimal building block library
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5423706/
https://www.ncbi.nlm.nih.gov/pubmed/28368582
http://dx.doi.org/10.1021/jacs.7b01807
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