Cargando…

Pyrene Functionalized Highly Reduced Graphene Oxide-palladium Nanocomposite: A Novel Catalyst for the Mizoroki-Heck Reaction in Water

The formation of a C-C bond through Mizoroki-Heck cross-coupling reactions in water with efficient heterogeneous catalysts is a challenging task. In this current study, a highly reduced graphene oxide (HRG) immobilized palladium (Pd) nanoparticle based catalyst (HRG-Py-Pd) is used to catalyze Mizoro...

Descripción completa

Detalles Bibliográficos
Autores principales: Khan, Mujeeb, Ashraf, Muhammad, Shaik, Mohammed Rafi, Adil, Syed Farooq, Islam, Mohammad Shahidul, Kuniyil, Mufsir, Khan, Merajuddin, Hatshan, Mohammad Rafe, Alshammari, Riyadh H., Siddiqui, Mohammed Rafiq H., Tahir, Muhammad Nawaz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9101052/
https://www.ncbi.nlm.nih.gov/pubmed/35572099
http://dx.doi.org/10.3389/fchem.2022.872366
_version_ 1784706990685028352
author Khan, Mujeeb
Ashraf, Muhammad
Shaik, Mohammed Rafi
Adil, Syed Farooq
Islam, Mohammad Shahidul
Kuniyil, Mufsir
Khan, Merajuddin
Hatshan, Mohammad Rafe
Alshammari, Riyadh H.
Siddiqui, Mohammed Rafiq H.
Tahir, Muhammad Nawaz
author_facet Khan, Mujeeb
Ashraf, Muhammad
Shaik, Mohammed Rafi
Adil, Syed Farooq
Islam, Mohammad Shahidul
Kuniyil, Mufsir
Khan, Merajuddin
Hatshan, Mohammad Rafe
Alshammari, Riyadh H.
Siddiqui, Mohammed Rafiq H.
Tahir, Muhammad Nawaz
author_sort Khan, Mujeeb
collection PubMed
description The formation of a C-C bond through Mizoroki-Heck cross-coupling reactions in water with efficient heterogeneous catalysts is a challenging task. In this current study, a highly reduced graphene oxide (HRG) immobilized palladium (Pd) nanoparticle based catalyst (HRG-Py-Pd) is used to catalyze Mizoroki-Heck cross-coupling reactions in water. During the preparation of the catalyst, amino pyrene is used as a smart functionalizing ligand, which offered chemically specific binding sites for the effective and homogeneous nucleation of Pd NPs on the surface of HRG, which significantly enhanced the physical stability and dispersibility of the resulting catalyst in an aqueous medium. Microscopic analysis of the catalyst revealed a uniform distribution of ultrafine Pd NPs on a solid support. The catalytic properties of HRG-Py-Pd are tested towards the Mizoroki-Heck cross-coupling reactions of various aryl halides with acrylic acid in an aqueous medium. Furthermore, the catalytic efficacy of HRG-Py-Pd is also compared with its non-functionalized counterparts such as HRG-Pd and pristine Pd NPs (Pd-NPs). Using the HRG-Py-Pd nanocatalyst, the highest conversion of 99% is achieved in the coupling reaction of 4-bromoanisol and acrylic acid in an aqueous solution in a relatively short period of time (3 h), with less quantity of catalyst (3 mg). Comparatively, pristine Pd NPs delivered lower conversion (∼92%) for the same reaction required a long reaction time and a large amount of catalyst (5.3 mg). Indeed, the conversion of the reaction further decreased to just 40% when 3 mg of Pd-NPs was used which was sufficient to produce 99% conversion in the case of HRG-Py-Pd. On the other hand, HRG-Pd did not deliver any conversion and was ineffective even after using a high amount of catalyst and a longer reaction time. The inability of the HRG-Pd to promote coupling reactions can be attributed to the agglomeration of Pd NPs which reduced the dispersion quality of the catalyst in water. Therefore, the high aqueous stability of HRG-Py-Pd due to smart functionalization can be utilized to perform other organic transformations in water which was otherwise not possible.
format Online
Article
Text
id pubmed-9101052
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-91010522022-05-14 Pyrene Functionalized Highly Reduced Graphene Oxide-palladium Nanocomposite: A Novel Catalyst for the Mizoroki-Heck Reaction in Water Khan, Mujeeb Ashraf, Muhammad Shaik, Mohammed Rafi Adil, Syed Farooq Islam, Mohammad Shahidul Kuniyil, Mufsir Khan, Merajuddin Hatshan, Mohammad Rafe Alshammari, Riyadh H. Siddiqui, Mohammed Rafiq H. Tahir, Muhammad Nawaz Front Chem Chemistry The formation of a C-C bond through Mizoroki-Heck cross-coupling reactions in water with efficient heterogeneous catalysts is a challenging task. In this current study, a highly reduced graphene oxide (HRG) immobilized palladium (Pd) nanoparticle based catalyst (HRG-Py-Pd) is used to catalyze Mizoroki-Heck cross-coupling reactions in water. During the preparation of the catalyst, amino pyrene is used as a smart functionalizing ligand, which offered chemically specific binding sites for the effective and homogeneous nucleation of Pd NPs on the surface of HRG, which significantly enhanced the physical stability and dispersibility of the resulting catalyst in an aqueous medium. Microscopic analysis of the catalyst revealed a uniform distribution of ultrafine Pd NPs on a solid support. The catalytic properties of HRG-Py-Pd are tested towards the Mizoroki-Heck cross-coupling reactions of various aryl halides with acrylic acid in an aqueous medium. Furthermore, the catalytic efficacy of HRG-Py-Pd is also compared with its non-functionalized counterparts such as HRG-Pd and pristine Pd NPs (Pd-NPs). Using the HRG-Py-Pd nanocatalyst, the highest conversion of 99% is achieved in the coupling reaction of 4-bromoanisol and acrylic acid in an aqueous solution in a relatively short period of time (3 h), with less quantity of catalyst (3 mg). Comparatively, pristine Pd NPs delivered lower conversion (∼92%) for the same reaction required a long reaction time and a large amount of catalyst (5.3 mg). Indeed, the conversion of the reaction further decreased to just 40% when 3 mg of Pd-NPs was used which was sufficient to produce 99% conversion in the case of HRG-Py-Pd. On the other hand, HRG-Pd did not deliver any conversion and was ineffective even after using a high amount of catalyst and a longer reaction time. The inability of the HRG-Pd to promote coupling reactions can be attributed to the agglomeration of Pd NPs which reduced the dispersion quality of the catalyst in water. Therefore, the high aqueous stability of HRG-Py-Pd due to smart functionalization can be utilized to perform other organic transformations in water which was otherwise not possible. Frontiers Media S.A. 2022-04-29 /pmc/articles/PMC9101052/ /pubmed/35572099 http://dx.doi.org/10.3389/fchem.2022.872366 Text en Copyright © 2022 Khan, Ashraf, Shaik, Adil, Islam, Kuniyil, Khan, Hatshan, Alshammari, Siddiqui and Tahir. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Khan, Mujeeb
Ashraf, Muhammad
Shaik, Mohammed Rafi
Adil, Syed Farooq
Islam, Mohammad Shahidul
Kuniyil, Mufsir
Khan, Merajuddin
Hatshan, Mohammad Rafe
Alshammari, Riyadh H.
Siddiqui, Mohammed Rafiq H.
Tahir, Muhammad Nawaz
Pyrene Functionalized Highly Reduced Graphene Oxide-palladium Nanocomposite: A Novel Catalyst for the Mizoroki-Heck Reaction in Water
title Pyrene Functionalized Highly Reduced Graphene Oxide-palladium Nanocomposite: A Novel Catalyst for the Mizoroki-Heck Reaction in Water
title_full Pyrene Functionalized Highly Reduced Graphene Oxide-palladium Nanocomposite: A Novel Catalyst for the Mizoroki-Heck Reaction in Water
title_fullStr Pyrene Functionalized Highly Reduced Graphene Oxide-palladium Nanocomposite: A Novel Catalyst for the Mizoroki-Heck Reaction in Water
title_full_unstemmed Pyrene Functionalized Highly Reduced Graphene Oxide-palladium Nanocomposite: A Novel Catalyst for the Mizoroki-Heck Reaction in Water
title_short Pyrene Functionalized Highly Reduced Graphene Oxide-palladium Nanocomposite: A Novel Catalyst for the Mizoroki-Heck Reaction in Water
title_sort pyrene functionalized highly reduced graphene oxide-palladium nanocomposite: a novel catalyst for the mizoroki-heck reaction in water
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9101052/
https://www.ncbi.nlm.nih.gov/pubmed/35572099
http://dx.doi.org/10.3389/fchem.2022.872366
work_keys_str_mv AT khanmujeeb pyrenefunctionalizedhighlyreducedgrapheneoxidepalladiumnanocompositeanovelcatalystforthemizorokiheckreactioninwater
AT ashrafmuhammad pyrenefunctionalizedhighlyreducedgrapheneoxidepalladiumnanocompositeanovelcatalystforthemizorokiheckreactioninwater
AT shaikmohammedrafi pyrenefunctionalizedhighlyreducedgrapheneoxidepalladiumnanocompositeanovelcatalystforthemizorokiheckreactioninwater
AT adilsyedfarooq pyrenefunctionalizedhighlyreducedgrapheneoxidepalladiumnanocompositeanovelcatalystforthemizorokiheckreactioninwater
AT islammohammadshahidul pyrenefunctionalizedhighlyreducedgrapheneoxidepalladiumnanocompositeanovelcatalystforthemizorokiheckreactioninwater
AT kuniyilmufsir pyrenefunctionalizedhighlyreducedgrapheneoxidepalladiumnanocompositeanovelcatalystforthemizorokiheckreactioninwater
AT khanmerajuddin pyrenefunctionalizedhighlyreducedgrapheneoxidepalladiumnanocompositeanovelcatalystforthemizorokiheckreactioninwater
AT hatshanmohammadrafe pyrenefunctionalizedhighlyreducedgrapheneoxidepalladiumnanocompositeanovelcatalystforthemizorokiheckreactioninwater
AT alshammaririyadhh pyrenefunctionalizedhighlyreducedgrapheneoxidepalladiumnanocompositeanovelcatalystforthemizorokiheckreactioninwater
AT siddiquimohammedrafiqh pyrenefunctionalizedhighlyreducedgrapheneoxidepalladiumnanocompositeanovelcatalystforthemizorokiheckreactioninwater
AT tahirmuhammadnawaz pyrenefunctionalizedhighlyreducedgrapheneoxidepalladiumnanocompositeanovelcatalystforthemizorokiheckreactioninwater