Cargando…

Zirconium metal–organic frameworks incorporating tetrathiafulvalene linkers: robust and redox-active matrices for in situ confinement of metal nanoparticles

Redox-active metal–organic frameworks (MOFs), with highly ordered porous structures and redox tunability, have attracted research interest in the fields of catalysis, energy storage, and electrochemical sensing. However, the chemical lability has limited the application scope of many redox-active MO...

Descripción completa

Detalles Bibliográficos
Autores principales: Su, Jian, Yuan, Shuai, Wang, Tao, Lollar, Christina Tori, Zuo, Jing-Lin, Zhang, Jiangwei, Zhou, Hong-Cai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8148302/
https://www.ncbi.nlm.nih.gov/pubmed/34123285
http://dx.doi.org/10.1039/c9sc06009j
_version_ 1783697807214903296
author Su, Jian
Yuan, Shuai
Wang, Tao
Lollar, Christina Tori
Zuo, Jing-Lin
Zhang, Jiangwei
Zhou, Hong-Cai
author_facet Su, Jian
Yuan, Shuai
Wang, Tao
Lollar, Christina Tori
Zuo, Jing-Lin
Zhang, Jiangwei
Zhou, Hong-Cai
author_sort Su, Jian
collection PubMed
description Redox-active metal–organic frameworks (MOFs), with highly ordered porous structures and redox tunability, have attracted research interest in the fields of catalysis, energy storage, and electrochemical sensing. However, the chemical lability has limited the application scope of many redox-active MOFs. Herein, we selected stable Zr(6) inorganic nodes and redox-active tetrathiafulvalene (TTF)-based linkers to construct two robust, redox-active MOFs, namely compounds 1 ([Zr(6)(TTFTB)(2)O(8)(OH(2))(8)]) and 2 ([Zr(6)(Me-TTFTB)(1.5)O(4)(OH)(4)(C(6)H(5)COO)(6)]) (TTFTB = tetrathiafulvalene tetrabenzoate; Me-TTFTB = tetrathiafulvalene tetramethylbenzoate). The structure and topology of the MOFs were controlled by tuning the linker conformation through steric effects, resulting in a variety of pore structures from microporous channels (compound 1) to hierarchically micro/mesoporous cages (compound 2). Compound 2 shows high porosity with a BET surface area of 1932 m(2) g(−1) and strong chemical stability in aqueous solutions with pH ranging from 1 to 12. Furthermore, the reductive TTF moieties allow for in situ generation and stabilization of ultra-small noble metal (Ag, Pd, and Au) nanoparticles by incubating MOFs in the respective metal salt solution. Single crystal structures, TEM images, and pore size distribution data from N(2) adsorption measurements indicated that the metal nanoparticles were mostly placed in the small cubic cavities of hierarchically porous compound 2, leaving the large cages open for substrate diffusion. As a proof of concept, Pd NPs@compound 2 was utilized as a heterogeneous catalyst for aerobic oxidation of alcohols, showing noteworthy activity and recyclability.
format Online
Article
Text
id pubmed-8148302
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-81483022021-06-11 Zirconium metal–organic frameworks incorporating tetrathiafulvalene linkers: robust and redox-active matrices for in situ confinement of metal nanoparticles Su, Jian Yuan, Shuai Wang, Tao Lollar, Christina Tori Zuo, Jing-Lin Zhang, Jiangwei Zhou, Hong-Cai Chem Sci Chemistry Redox-active metal–organic frameworks (MOFs), with highly ordered porous structures and redox tunability, have attracted research interest in the fields of catalysis, energy storage, and electrochemical sensing. However, the chemical lability has limited the application scope of many redox-active MOFs. Herein, we selected stable Zr(6) inorganic nodes and redox-active tetrathiafulvalene (TTF)-based linkers to construct two robust, redox-active MOFs, namely compounds 1 ([Zr(6)(TTFTB)(2)O(8)(OH(2))(8)]) and 2 ([Zr(6)(Me-TTFTB)(1.5)O(4)(OH)(4)(C(6)H(5)COO)(6)]) (TTFTB = tetrathiafulvalene tetrabenzoate; Me-TTFTB = tetrathiafulvalene tetramethylbenzoate). The structure and topology of the MOFs were controlled by tuning the linker conformation through steric effects, resulting in a variety of pore structures from microporous channels (compound 1) to hierarchically micro/mesoporous cages (compound 2). Compound 2 shows high porosity with a BET surface area of 1932 m(2) g(−1) and strong chemical stability in aqueous solutions with pH ranging from 1 to 12. Furthermore, the reductive TTF moieties allow for in situ generation and stabilization of ultra-small noble metal (Ag, Pd, and Au) nanoparticles by incubating MOFs in the respective metal salt solution. Single crystal structures, TEM images, and pore size distribution data from N(2) adsorption measurements indicated that the metal nanoparticles were mostly placed in the small cubic cavities of hierarchically porous compound 2, leaving the large cages open for substrate diffusion. As a proof of concept, Pd NPs@compound 2 was utilized as a heterogeneous catalyst for aerobic oxidation of alcohols, showing noteworthy activity and recyclability. The Royal Society of Chemistry 2020-01-09 /pmc/articles/PMC8148302/ /pubmed/34123285 http://dx.doi.org/10.1039/c9sc06009j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Su, Jian
Yuan, Shuai
Wang, Tao
Lollar, Christina Tori
Zuo, Jing-Lin
Zhang, Jiangwei
Zhou, Hong-Cai
Zirconium metal–organic frameworks incorporating tetrathiafulvalene linkers: robust and redox-active matrices for in situ confinement of metal nanoparticles
title Zirconium metal–organic frameworks incorporating tetrathiafulvalene linkers: robust and redox-active matrices for in situ confinement of metal nanoparticles
title_full Zirconium metal–organic frameworks incorporating tetrathiafulvalene linkers: robust and redox-active matrices for in situ confinement of metal nanoparticles
title_fullStr Zirconium metal–organic frameworks incorporating tetrathiafulvalene linkers: robust and redox-active matrices for in situ confinement of metal nanoparticles
title_full_unstemmed Zirconium metal–organic frameworks incorporating tetrathiafulvalene linkers: robust and redox-active matrices for in situ confinement of metal nanoparticles
title_short Zirconium metal–organic frameworks incorporating tetrathiafulvalene linkers: robust and redox-active matrices for in situ confinement of metal nanoparticles
title_sort zirconium metal–organic frameworks incorporating tetrathiafulvalene linkers: robust and redox-active matrices for in situ confinement of metal nanoparticles
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8148302/
https://www.ncbi.nlm.nih.gov/pubmed/34123285
http://dx.doi.org/10.1039/c9sc06009j
work_keys_str_mv AT sujian zirconiummetalorganicframeworksincorporatingtetrathiafulvalenelinkersrobustandredoxactivematricesforinsituconfinementofmetalnanoparticles
AT yuanshuai zirconiummetalorganicframeworksincorporatingtetrathiafulvalenelinkersrobustandredoxactivematricesforinsituconfinementofmetalnanoparticles
AT wangtao zirconiummetalorganicframeworksincorporatingtetrathiafulvalenelinkersrobustandredoxactivematricesforinsituconfinementofmetalnanoparticles
AT lollarchristinatori zirconiummetalorganicframeworksincorporatingtetrathiafulvalenelinkersrobustandredoxactivematricesforinsituconfinementofmetalnanoparticles
AT zuojinglin zirconiummetalorganicframeworksincorporatingtetrathiafulvalenelinkersrobustandredoxactivematricesforinsituconfinementofmetalnanoparticles
AT zhangjiangwei zirconiummetalorganicframeworksincorporatingtetrathiafulvalenelinkersrobustandredoxactivematricesforinsituconfinementofmetalnanoparticles
AT zhouhongcai zirconiummetalorganicframeworksincorporatingtetrathiafulvalenelinkersrobustandredoxactivematricesforinsituconfinementofmetalnanoparticles