Cargando…

Noble Metal Nanoparticles Incorporated Siliceous TUD-1 Mesoporous Nano-Catalyst for Low-Temperature Oxidation of Carbon Monoxide

This report, for the first time, demonstrated the low-temperature oxidation of carbon monoxide (CO) using nano-catalysts consisting of noble metal nanoparticles incorporated in TUD-1 mesoporous silica nano-structures synthesized via a one-pot surfactant-free sol–gel synthesis methodology. Herein, we...

Descripción completa

Detalles Bibliográficos
Autores principales: Al-Shehri, Badria M., Shkir, Mohd, Khder, A. S., Kaushik, Ajeet, Hamdy, Mohamed S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7352551/
https://www.ncbi.nlm.nih.gov/pubmed/32486262
http://dx.doi.org/10.3390/nano10061067
_version_ 1783557664429572096
author Al-Shehri, Badria M.
Shkir, Mohd
Khder, A. S.
Kaushik, Ajeet
Hamdy, Mohamed S.
author_facet Al-Shehri, Badria M.
Shkir, Mohd
Khder, A. S.
Kaushik, Ajeet
Hamdy, Mohamed S.
author_sort Al-Shehri, Badria M.
collection PubMed
description This report, for the first time, demonstrated the low-temperature oxidation of carbon monoxide (CO) using nano-catalysts consisting of noble metal nanoparticles incorporated in TUD-1 mesoporous silica nano-structures synthesized via a one-pot surfactant-free sol–gel synthesis methodology. Herein, we investigated a nano-catalyst, represented as M-TUD-1 (M = Rh, Pd, Pt and Au), which was prepared using a constant Si/M ratio of 100. The outcome of the analytical studies confirmed the formation of a nano-catalyst ranging from 5 to 10 nm wherein noble metal nanoparticles were distributed uniformly onto the mesopores of TUD-1. The catalytic performance of M-TUD-1 catalysts was examined in the environmentally impacted CO oxidation reaction to CO(2). The catalytic performance of Au-TUD-1 benchmarked other M-TUD-1 catalysts and a total conversion of CO was obtained at 303 K. The activity of the other nano-catalysts was obtained as Pt-TUD-1 > Pd-TUD-1 > Rh-TUD-1, with a total CO conversion at temperatures of 308, 328 and 348 K, respectively. The Au-TUD-1 exhibited a high stability and reusability as indicated by the observed high activity after ten continuous runs without any treatment. The outcomes of this research suggested that M-TUD-1 are promising nano-catalysts for the removal of the toxic CO gas and can also potentially be useful to protect the environment where a long-life time, cost-effectiveness and industrial scaling-up are the key approaches.
format Online
Article
Text
id pubmed-7352551
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-73525512020-07-15 Noble Metal Nanoparticles Incorporated Siliceous TUD-1 Mesoporous Nano-Catalyst for Low-Temperature Oxidation of Carbon Monoxide Al-Shehri, Badria M. Shkir, Mohd Khder, A. S. Kaushik, Ajeet Hamdy, Mohamed S. Nanomaterials (Basel) Article This report, for the first time, demonstrated the low-temperature oxidation of carbon monoxide (CO) using nano-catalysts consisting of noble metal nanoparticles incorporated in TUD-1 mesoporous silica nano-structures synthesized via a one-pot surfactant-free sol–gel synthesis methodology. Herein, we investigated a nano-catalyst, represented as M-TUD-1 (M = Rh, Pd, Pt and Au), which was prepared using a constant Si/M ratio of 100. The outcome of the analytical studies confirmed the formation of a nano-catalyst ranging from 5 to 10 nm wherein noble metal nanoparticles were distributed uniformly onto the mesopores of TUD-1. The catalytic performance of M-TUD-1 catalysts was examined in the environmentally impacted CO oxidation reaction to CO(2). The catalytic performance of Au-TUD-1 benchmarked other M-TUD-1 catalysts and a total conversion of CO was obtained at 303 K. The activity of the other nano-catalysts was obtained as Pt-TUD-1 > Pd-TUD-1 > Rh-TUD-1, with a total CO conversion at temperatures of 308, 328 and 348 K, respectively. The Au-TUD-1 exhibited a high stability and reusability as indicated by the observed high activity after ten continuous runs without any treatment. The outcomes of this research suggested that M-TUD-1 are promising nano-catalysts for the removal of the toxic CO gas and can also potentially be useful to protect the environment where a long-life time, cost-effectiveness and industrial scaling-up are the key approaches. MDPI 2020-05-30 /pmc/articles/PMC7352551/ /pubmed/32486262 http://dx.doi.org/10.3390/nano10061067 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Al-Shehri, Badria M.
Shkir, Mohd
Khder, A. S.
Kaushik, Ajeet
Hamdy, Mohamed S.
Noble Metal Nanoparticles Incorporated Siliceous TUD-1 Mesoporous Nano-Catalyst for Low-Temperature Oxidation of Carbon Monoxide
title Noble Metal Nanoparticles Incorporated Siliceous TUD-1 Mesoporous Nano-Catalyst for Low-Temperature Oxidation of Carbon Monoxide
title_full Noble Metal Nanoparticles Incorporated Siliceous TUD-1 Mesoporous Nano-Catalyst for Low-Temperature Oxidation of Carbon Monoxide
title_fullStr Noble Metal Nanoparticles Incorporated Siliceous TUD-1 Mesoporous Nano-Catalyst for Low-Temperature Oxidation of Carbon Monoxide
title_full_unstemmed Noble Metal Nanoparticles Incorporated Siliceous TUD-1 Mesoporous Nano-Catalyst for Low-Temperature Oxidation of Carbon Monoxide
title_short Noble Metal Nanoparticles Incorporated Siliceous TUD-1 Mesoporous Nano-Catalyst for Low-Temperature Oxidation of Carbon Monoxide
title_sort noble metal nanoparticles incorporated siliceous tud-1 mesoporous nano-catalyst for low-temperature oxidation of carbon monoxide
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7352551/
https://www.ncbi.nlm.nih.gov/pubmed/32486262
http://dx.doi.org/10.3390/nano10061067
work_keys_str_mv AT alshehribadriam noblemetalnanoparticlesincorporatedsiliceoustud1mesoporousnanocatalystforlowtemperatureoxidationofcarbonmonoxide
AT shkirmohd noblemetalnanoparticlesincorporatedsiliceoustud1mesoporousnanocatalystforlowtemperatureoxidationofcarbonmonoxide
AT khderas noblemetalnanoparticlesincorporatedsiliceoustud1mesoporousnanocatalystforlowtemperatureoxidationofcarbonmonoxide
AT kaushikajeet noblemetalnanoparticlesincorporatedsiliceoustud1mesoporousnanocatalystforlowtemperatureoxidationofcarbonmonoxide
AT hamdymohameds noblemetalnanoparticlesincorporatedsiliceoustud1mesoporousnanocatalystforlowtemperatureoxidationofcarbonmonoxide