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The preparation of large surface area lanthanum based perovskite supports for AuPt nanoparticles: tuning the glycerol oxidation reaction pathway by switching the perovskite B site

Gold and gold alloys, in the form of supported nanoparticles, have been shown over the last three decades to be highly effective oxidation catalysts. Mixed metal oxide perovskites, with their high structural tolerance, are ideal for investigating how changes in the chemical composition of supports a...

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Autores principales: Evans, Christopher D., Kondrat, Simon A., Smith, Paul J., Manning, Troy D., Miedziak, Peter J., Brett, Gemma L., Armstrong, Robert D., Bartley, Jonathan K., Taylor, Stuart H., Rosseinsky, Matthew J., Hutchings, Graham J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5042134/
https://www.ncbi.nlm.nih.gov/pubmed/27074316
http://dx.doi.org/10.1039/c5fd00187k
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author Evans, Christopher D.
Kondrat, Simon A.
Smith, Paul J.
Manning, Troy D.
Miedziak, Peter J.
Brett, Gemma L.
Armstrong, Robert D.
Bartley, Jonathan K.
Taylor, Stuart H.
Rosseinsky, Matthew J.
Hutchings, Graham J.
author_facet Evans, Christopher D.
Kondrat, Simon A.
Smith, Paul J.
Manning, Troy D.
Miedziak, Peter J.
Brett, Gemma L.
Armstrong, Robert D.
Bartley, Jonathan K.
Taylor, Stuart H.
Rosseinsky, Matthew J.
Hutchings, Graham J.
author_sort Evans, Christopher D.
collection PubMed
description Gold and gold alloys, in the form of supported nanoparticles, have been shown over the last three decades to be highly effective oxidation catalysts. Mixed metal oxide perovskites, with their high structural tolerance, are ideal for investigating how changes in the chemical composition of supports affect the catalysts' properties, while retaining similar surface areas, morphologies and metal co-ordinations. However, a significant disadvantage of using perovskites as supports is their high crystallinity and small surface area. We report the use of a supercritical carbon dioxide anti-solvent precipitation methodology to prepare large surface area lanthanum based perovskites, making the deposition of 1 wt% AuPt nanoparticles feasible. These catalysts were used for the selective oxidation of glycerol. By changing the elemental composition of the perovskite B site, we dramatically altered the reaction pathway between a sequential oxidation route to glyceric or tartronic acid and a dehydration reaction pathway to lactic acid. Selectivity profiles were correlated to reported oxygen adsorption capacities of the perovskite supports and also to changes in the AuPt nanoparticle morphologies. Extended time on line analysis using the best oxidation catalyst (AuPt/LaMnO(3)) produced an exceptionally high tartronic acid yield. LaMnO(3) produced from alternative preparation methods was found to have lower activities, but gave comparable selectivity profiles to that produced using the supercritical carbon dioxide anti-solvent precipitation methodology.
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spelling pubmed-50421342016-10-12 The preparation of large surface area lanthanum based perovskite supports for AuPt nanoparticles: tuning the glycerol oxidation reaction pathway by switching the perovskite B site Evans, Christopher D. Kondrat, Simon A. Smith, Paul J. Manning, Troy D. Miedziak, Peter J. Brett, Gemma L. Armstrong, Robert D. Bartley, Jonathan K. Taylor, Stuart H. Rosseinsky, Matthew J. Hutchings, Graham J. Faraday Discuss Chemistry Gold and gold alloys, in the form of supported nanoparticles, have been shown over the last three decades to be highly effective oxidation catalysts. Mixed metal oxide perovskites, with their high structural tolerance, are ideal for investigating how changes in the chemical composition of supports affect the catalysts' properties, while retaining similar surface areas, morphologies and metal co-ordinations. However, a significant disadvantage of using perovskites as supports is their high crystallinity and small surface area. We report the use of a supercritical carbon dioxide anti-solvent precipitation methodology to prepare large surface area lanthanum based perovskites, making the deposition of 1 wt% AuPt nanoparticles feasible. These catalysts were used for the selective oxidation of glycerol. By changing the elemental composition of the perovskite B site, we dramatically altered the reaction pathway between a sequential oxidation route to glyceric or tartronic acid and a dehydration reaction pathway to lactic acid. Selectivity profiles were correlated to reported oxygen adsorption capacities of the perovskite supports and also to changes in the AuPt nanoparticle morphologies. Extended time on line analysis using the best oxidation catalyst (AuPt/LaMnO(3)) produced an exceptionally high tartronic acid yield. LaMnO(3) produced from alternative preparation methods was found to have lower activities, but gave comparable selectivity profiles to that produced using the supercritical carbon dioxide anti-solvent precipitation methodology. Royal Society of Chemistry 2016-07-04 2016-04-13 /pmc/articles/PMC5042134/ /pubmed/27074316 http://dx.doi.org/10.1039/c5fd00187k Text en This journal is © The Royal Society of Chemistry 2016 http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Evans, Christopher D.
Kondrat, Simon A.
Smith, Paul J.
Manning, Troy D.
Miedziak, Peter J.
Brett, Gemma L.
Armstrong, Robert D.
Bartley, Jonathan K.
Taylor, Stuart H.
Rosseinsky, Matthew J.
Hutchings, Graham J.
The preparation of large surface area lanthanum based perovskite supports for AuPt nanoparticles: tuning the glycerol oxidation reaction pathway by switching the perovskite B site
title The preparation of large surface area lanthanum based perovskite supports for AuPt nanoparticles: tuning the glycerol oxidation reaction pathway by switching the perovskite B site
title_full The preparation of large surface area lanthanum based perovskite supports for AuPt nanoparticles: tuning the glycerol oxidation reaction pathway by switching the perovskite B site
title_fullStr The preparation of large surface area lanthanum based perovskite supports for AuPt nanoparticles: tuning the glycerol oxidation reaction pathway by switching the perovskite B site
title_full_unstemmed The preparation of large surface area lanthanum based perovskite supports for AuPt nanoparticles: tuning the glycerol oxidation reaction pathway by switching the perovskite B site
title_short The preparation of large surface area lanthanum based perovskite supports for AuPt nanoparticles: tuning the glycerol oxidation reaction pathway by switching the perovskite B site
title_sort preparation of large surface area lanthanum based perovskite supports for aupt nanoparticles: tuning the glycerol oxidation reaction pathway by switching the perovskite b site
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5042134/
https://www.ncbi.nlm.nih.gov/pubmed/27074316
http://dx.doi.org/10.1039/c5fd00187k
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