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Catalytic Oxidation of Toluene into Benzaldehyde and Benzyl Alcohol Using Molybdenum-Incorporated Manganese Oxide Nanomaterials

[Image: see text] Oxidation of toluene (an organic pollutant), into useful chemical products, is of great interest nowadays. However, efficient conversion of toluene under mild and sustainable conditions is a thought-provoking task. Here, we report MnMoO(4) nanomaterials (CH1–CH2), synthesized throu...

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Autores principales: Shoukat, Hamza, Altaf, Ataf Ali, Hamayun, Muhammad, Ullah, Shaheed, Kausar, Samia, Hamza, Muhammad, Muhammad, Shabbir, Badshah, Amin, Rasool, Nasir, Imran, Muhammad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8340403/
https://www.ncbi.nlm.nih.gov/pubmed/34368547
http://dx.doi.org/10.1021/acsomega.1c02163
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author Shoukat, Hamza
Altaf, Ataf Ali
Hamayun, Muhammad
Ullah, Shaheed
Kausar, Samia
Hamza, Muhammad
Muhammad, Shabbir
Badshah, Amin
Rasool, Nasir
Imran, Muhammad
author_facet Shoukat, Hamza
Altaf, Ataf Ali
Hamayun, Muhammad
Ullah, Shaheed
Kausar, Samia
Hamza, Muhammad
Muhammad, Shabbir
Badshah, Amin
Rasool, Nasir
Imran, Muhammad
author_sort Shoukat, Hamza
collection PubMed
description [Image: see text] Oxidation of toluene (an organic pollutant), into useful chemical products, is of great interest nowadays. However, efficient conversion of toluene under mild and sustainable conditions is a thought-provoking task. Here, we report MnMoO(4) nanomaterials (CH1–CH2), synthesized through a very facile solvothermal approach. Catalytic efficiencies of MnMoO(4) nanomaterials were evaluated by direct oxidation of toluene via C–H activation. Toluene was converted into benzaldehyde and benzyl alcohol in the presence of H(2)O(2) as an oxidant at 80 °C. The reaction parameters, that is, catalyst dose, time, and toluene concentration, were varied to obtain the optimal conditions for the oxidation process. The 40.62% maximum toluene conversion rate was obtained after 18 h of oxidation activity with 0.06 g of catalyst CH1. A maximum of 78% benzaldehyde selectivity was obtained with 0.06 g of catalyst CH1 after 18 h of toluene oxidation activity. Also, 62.33% benzyl alcohol selectivity was achieved using 0.1 g of catalyst CH1 after 1 h of activity. Several catalytic cycles were run with CH1 to evaluate catalyst reusability. Potential % toluene conversion was obtained for up to six cycles and their turnover frequencies were found to be 1.94–1.01 s(–1). FTIR spectra of catalyst CH1 before and after recovery indicate no significant change. The good conversion rate of toluene and efficient selectivity toward benzaldehyde and benzyl alcohol indicates the robustness and high potential of these catalysts to oxidize toluene under a milder, greener, and hazardous chlorine-free environment.
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spelling pubmed-83404032021-08-06 Catalytic Oxidation of Toluene into Benzaldehyde and Benzyl Alcohol Using Molybdenum-Incorporated Manganese Oxide Nanomaterials Shoukat, Hamza Altaf, Ataf Ali Hamayun, Muhammad Ullah, Shaheed Kausar, Samia Hamza, Muhammad Muhammad, Shabbir Badshah, Amin Rasool, Nasir Imran, Muhammad ACS Omega [Image: see text] Oxidation of toluene (an organic pollutant), into useful chemical products, is of great interest nowadays. However, efficient conversion of toluene under mild and sustainable conditions is a thought-provoking task. Here, we report MnMoO(4) nanomaterials (CH1–CH2), synthesized through a very facile solvothermal approach. Catalytic efficiencies of MnMoO(4) nanomaterials were evaluated by direct oxidation of toluene via C–H activation. Toluene was converted into benzaldehyde and benzyl alcohol in the presence of H(2)O(2) as an oxidant at 80 °C. The reaction parameters, that is, catalyst dose, time, and toluene concentration, were varied to obtain the optimal conditions for the oxidation process. The 40.62% maximum toluene conversion rate was obtained after 18 h of oxidation activity with 0.06 g of catalyst CH1. A maximum of 78% benzaldehyde selectivity was obtained with 0.06 g of catalyst CH1 after 18 h of toluene oxidation activity. Also, 62.33% benzyl alcohol selectivity was achieved using 0.1 g of catalyst CH1 after 1 h of activity. Several catalytic cycles were run with CH1 to evaluate catalyst reusability. Potential % toluene conversion was obtained for up to six cycles and their turnover frequencies were found to be 1.94–1.01 s(–1). FTIR spectra of catalyst CH1 before and after recovery indicate no significant change. The good conversion rate of toluene and efficient selectivity toward benzaldehyde and benzyl alcohol indicates the robustness and high potential of these catalysts to oxidize toluene under a milder, greener, and hazardous chlorine-free environment. American Chemical Society 2021-07-20 /pmc/articles/PMC8340403/ /pubmed/34368547 http://dx.doi.org/10.1021/acsomega.1c02163 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Shoukat, Hamza
Altaf, Ataf Ali
Hamayun, Muhammad
Ullah, Shaheed
Kausar, Samia
Hamza, Muhammad
Muhammad, Shabbir
Badshah, Amin
Rasool, Nasir
Imran, Muhammad
Catalytic Oxidation of Toluene into Benzaldehyde and Benzyl Alcohol Using Molybdenum-Incorporated Manganese Oxide Nanomaterials
title Catalytic Oxidation of Toluene into Benzaldehyde and Benzyl Alcohol Using Molybdenum-Incorporated Manganese Oxide Nanomaterials
title_full Catalytic Oxidation of Toluene into Benzaldehyde and Benzyl Alcohol Using Molybdenum-Incorporated Manganese Oxide Nanomaterials
title_fullStr Catalytic Oxidation of Toluene into Benzaldehyde and Benzyl Alcohol Using Molybdenum-Incorporated Manganese Oxide Nanomaterials
title_full_unstemmed Catalytic Oxidation of Toluene into Benzaldehyde and Benzyl Alcohol Using Molybdenum-Incorporated Manganese Oxide Nanomaterials
title_short Catalytic Oxidation of Toluene into Benzaldehyde and Benzyl Alcohol Using Molybdenum-Incorporated Manganese Oxide Nanomaterials
title_sort catalytic oxidation of toluene into benzaldehyde and benzyl alcohol using molybdenum-incorporated manganese oxide nanomaterials
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8340403/
https://www.ncbi.nlm.nih.gov/pubmed/34368547
http://dx.doi.org/10.1021/acsomega.1c02163
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