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Engineering a Highly Defective Stable UiO-66 with Tunable Lewis- Brønsted Acidity: The Role of the Hemilabile Linker
[Image: see text] The stability of metal–organic frameworks (MOFs) typically decreases with an increasing number of defects, limiting the number of defects that can be created and limiting catalytic and other applications. Herein, we use a hemilabile (Hl) linker to create up to a maximum of six defe...
Autores principales: | , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical
Society
2020
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7020139/ https://www.ncbi.nlm.nih.gov/pubmed/31971786 http://dx.doi.org/10.1021/jacs.9b13070 |
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author | Feng, Xiao Hajek, Julianna Jena, Himanshu Sekhar Wang, Guangbo Veerapandian, Savita K.P. Morent, Rino De Geyter, Nathalie Leyssens, Karen Hoffman, Alexander E.J. Meynen, Vera Marquez, Carlos De Vos, Dirk E. Van Speybroeck, Veronique Leus, Karen Van Der Voort, Pascal |
author_facet | Feng, Xiao Hajek, Julianna Jena, Himanshu Sekhar Wang, Guangbo Veerapandian, Savita K.P. Morent, Rino De Geyter, Nathalie Leyssens, Karen Hoffman, Alexander E.J. Meynen, Vera Marquez, Carlos De Vos, Dirk E. Van Speybroeck, Veronique Leus, Karen Van Der Voort, Pascal |
author_sort | Feng, Xiao |
collection | PubMed |
description | [Image: see text] The stability of metal–organic frameworks (MOFs) typically decreases with an increasing number of defects, limiting the number of defects that can be created and limiting catalytic and other applications. Herein, we use a hemilabile (Hl) linker to create up to a maximum of six defects per cluster in UiO-66. We synthesized hemilabile UiO-66 (Hl-UiO-66) using benzene dicarboxylate (BDC) as linker and 4-sulfonatobenzoate (PSBA) as the hemilabile linker. The PSBA acts not only as a modulator to create defects but also as a coligand that enhances the stability of the resulting defective framework. Furthermore, upon a postsynthetic treatment in H(2)SO(4), the average number of defects increases to the optimum of six missing BDC linkers per cluster (three per formula unit), leaving the Zr-nodes on average sixfold coordinated. Remarkably, the thermal stability of the materials further increases upon this treatment. Periodic density functional theory calculations confirm that the hemilabile ligands strengthen this highly defective structure by several stabilizing interactions. Finally, the catalytic activity of the obtained materials is evaluated in the acid-catalyzed isomerization of α-pinene oxide. This reaction is particularly sensitive to the Brønsted or Lewis acid sites in the catalyst. In comparison to the pristine UiO-66, which mainly possesses Brønsted acid sites, the Hl-UiO-66 and the postsynthetically treated Hl-UiO-66 structures exhibited a higher Lewis acidity and an enhanced activity and selectivity. This is further explored by CD(3)CN spectroscopic sorption experiments. We have shown that by tuning the number of defects in UiO-66 using PSBA as the hemilabile linker, one can achieve highly defective and stable MOFs and easily control the Brønsted to Lewis acid ratio in the materials and thus their catalytic activity and selectivity. |
format | Online Article Text |
id | pubmed-7020139 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | American Chemical
Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-70201392020-02-18 Engineering a Highly Defective Stable UiO-66 with Tunable Lewis- Brønsted Acidity: The Role of the Hemilabile Linker Feng, Xiao Hajek, Julianna Jena, Himanshu Sekhar Wang, Guangbo Veerapandian, Savita K.P. Morent, Rino De Geyter, Nathalie Leyssens, Karen Hoffman, Alexander E.J. Meynen, Vera Marquez, Carlos De Vos, Dirk E. Van Speybroeck, Veronique Leus, Karen Van Der Voort, Pascal J Am Chem Soc [Image: see text] The stability of metal–organic frameworks (MOFs) typically decreases with an increasing number of defects, limiting the number of defects that can be created and limiting catalytic and other applications. Herein, we use a hemilabile (Hl) linker to create up to a maximum of six defects per cluster in UiO-66. We synthesized hemilabile UiO-66 (Hl-UiO-66) using benzene dicarboxylate (BDC) as linker and 4-sulfonatobenzoate (PSBA) as the hemilabile linker. The PSBA acts not only as a modulator to create defects but also as a coligand that enhances the stability of the resulting defective framework. Furthermore, upon a postsynthetic treatment in H(2)SO(4), the average number of defects increases to the optimum of six missing BDC linkers per cluster (three per formula unit), leaving the Zr-nodes on average sixfold coordinated. Remarkably, the thermal stability of the materials further increases upon this treatment. Periodic density functional theory calculations confirm that the hemilabile ligands strengthen this highly defective structure by several stabilizing interactions. Finally, the catalytic activity of the obtained materials is evaluated in the acid-catalyzed isomerization of α-pinene oxide. This reaction is particularly sensitive to the Brønsted or Lewis acid sites in the catalyst. In comparison to the pristine UiO-66, which mainly possesses Brønsted acid sites, the Hl-UiO-66 and the postsynthetically treated Hl-UiO-66 structures exhibited a higher Lewis acidity and an enhanced activity and selectivity. This is further explored by CD(3)CN spectroscopic sorption experiments. We have shown that by tuning the number of defects in UiO-66 using PSBA as the hemilabile linker, one can achieve highly defective and stable MOFs and easily control the Brønsted to Lewis acid ratio in the materials and thus their catalytic activity and selectivity. American Chemical Society 2020-01-23 2020-02-12 /pmc/articles/PMC7020139/ /pubmed/31971786 http://dx.doi.org/10.1021/jacs.9b13070 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes. |
spellingShingle | Feng, Xiao Hajek, Julianna Jena, Himanshu Sekhar Wang, Guangbo Veerapandian, Savita K.P. Morent, Rino De Geyter, Nathalie Leyssens, Karen Hoffman, Alexander E.J. Meynen, Vera Marquez, Carlos De Vos, Dirk E. Van Speybroeck, Veronique Leus, Karen Van Der Voort, Pascal Engineering a Highly Defective Stable UiO-66 with Tunable Lewis- Brønsted Acidity: The Role of the Hemilabile Linker |
title | Engineering
a Highly Defective Stable UiO-66 with
Tunable Lewis- Brønsted Acidity: The Role of the Hemilabile Linker |
title_full | Engineering
a Highly Defective Stable UiO-66 with
Tunable Lewis- Brønsted Acidity: The Role of the Hemilabile Linker |
title_fullStr | Engineering
a Highly Defective Stable UiO-66 with
Tunable Lewis- Brønsted Acidity: The Role of the Hemilabile Linker |
title_full_unstemmed | Engineering
a Highly Defective Stable UiO-66 with
Tunable Lewis- Brønsted Acidity: The Role of the Hemilabile Linker |
title_short | Engineering
a Highly Defective Stable UiO-66 with
Tunable Lewis- Brønsted Acidity: The Role of the Hemilabile Linker |
title_sort | engineering
a highly defective stable uio-66 with
tunable lewis- brønsted acidity: the role of the hemilabile linker |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7020139/ https://www.ncbi.nlm.nih.gov/pubmed/31971786 http://dx.doi.org/10.1021/jacs.9b13070 |
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