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Uncovering selective and active Ga surface sites in gallia–alumina mixed-oxide propane dehydrogenation catalysts by dynamic nuclear polarization surface enhanced NMR spectroscopy

Gallia–alumina (Ga,Al)(2)O(3(x : y)) spinel-type solid solution nanoparticle catalysts for propane dehydrogenation (PDH) were prepared with four nominal Ga : Al atomic ratios (1 : 6, 1 : 3, 3 : 1, 1 : 0) using a colloidal synthesis approach. The structure, coordination environment and distribution o...

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Autores principales: Castro-Fernández, Pedro, Kaushik, Monu, Wang, Zhuoran, Mance, Deni, Kountoupi, Evgenia, Willinger, Elena, Abdala, Paula M., Copéret, Christophe, Lesage, Anne, Fedorov, Alexey, Müller, Christoph R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8635172/
https://www.ncbi.nlm.nih.gov/pubmed/34976347
http://dx.doi.org/10.1039/d1sc05381g
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author Castro-Fernández, Pedro
Kaushik, Monu
Wang, Zhuoran
Mance, Deni
Kountoupi, Evgenia
Willinger, Elena
Abdala, Paula M.
Copéret, Christophe
Lesage, Anne
Fedorov, Alexey
Müller, Christoph R.
author_facet Castro-Fernández, Pedro
Kaushik, Monu
Wang, Zhuoran
Mance, Deni
Kountoupi, Evgenia
Willinger, Elena
Abdala, Paula M.
Copéret, Christophe
Lesage, Anne
Fedorov, Alexey
Müller, Christoph R.
author_sort Castro-Fernández, Pedro
collection PubMed
description Gallia–alumina (Ga,Al)(2)O(3(x : y)) spinel-type solid solution nanoparticle catalysts for propane dehydrogenation (PDH) were prepared with four nominal Ga : Al atomic ratios (1 : 6, 1 : 3, 3 : 1, 1 : 0) using a colloidal synthesis approach. The structure, coordination environment and distribution of Ga and Al sites in these materials were investigated by X-ray diffraction, X-ray absorption spectroscopy (Ga K-edge) as well as (27)Al and (71)Ga solid state nuclear magnetic resonance. The surface acidity (Lewis or Brønsted) was probed using infrared spectroscopy with pyridine and 2,6-dimethylpyridine probe molecules, complemented by element-specific insights (Ga or Al) from dynamic nuclear polarization surface enhanced cross-polarization magic angle spinning (15)N{(27)Al} and (15)N{(71)Ga} J coupling mediated heteronuclear multiple quantum correlation NMR experiments using (15)N-labelled pyridine as a probe molecule. The latter approach provides unique insights into the nature and relative strength of the surface acid sites as it allows to distinguish contributions from Al and Ga sites to the overall surface acidity of mixed (Ga,Al)(2)O(3) oxides. Notably, we demonstrate that (Ga,Al)(2)O(3) catalysts with a high Al content show a greater relative abundance of four-coordinated Ga sites and a greater relative fraction of weak/medium Ga-based surface Lewis acid sites, which correlates with superior propene selectivity, Ga-based activity, and stability in PDH (due to lower coking). In contrast, (Ga,Al)(2)O(3) catalysts with a lower Al content feature a higher fraction of six-coordinated Ga sites, as well as more abundant Ga-based strong surface Lewis acid sites, which deactivate through coking. Overall, the results show that the relative abundance and strength of Ga-based surface Lewis acid sites can be tuned by optimizing the bulk Ga : Al atomic ratio, thus providing an effective measure for a rational control of the catalyst performance.
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spelling pubmed-86351722021-12-30 Uncovering selective and active Ga surface sites in gallia–alumina mixed-oxide propane dehydrogenation catalysts by dynamic nuclear polarization surface enhanced NMR spectroscopy Castro-Fernández, Pedro Kaushik, Monu Wang, Zhuoran Mance, Deni Kountoupi, Evgenia Willinger, Elena Abdala, Paula M. Copéret, Christophe Lesage, Anne Fedorov, Alexey Müller, Christoph R. Chem Sci Chemistry Gallia–alumina (Ga,Al)(2)O(3(x : y)) spinel-type solid solution nanoparticle catalysts for propane dehydrogenation (PDH) were prepared with four nominal Ga : Al atomic ratios (1 : 6, 1 : 3, 3 : 1, 1 : 0) using a colloidal synthesis approach. The structure, coordination environment and distribution of Ga and Al sites in these materials were investigated by X-ray diffraction, X-ray absorption spectroscopy (Ga K-edge) as well as (27)Al and (71)Ga solid state nuclear magnetic resonance. The surface acidity (Lewis or Brønsted) was probed using infrared spectroscopy with pyridine and 2,6-dimethylpyridine probe molecules, complemented by element-specific insights (Ga or Al) from dynamic nuclear polarization surface enhanced cross-polarization magic angle spinning (15)N{(27)Al} and (15)N{(71)Ga} J coupling mediated heteronuclear multiple quantum correlation NMR experiments using (15)N-labelled pyridine as a probe molecule. The latter approach provides unique insights into the nature and relative strength of the surface acid sites as it allows to distinguish contributions from Al and Ga sites to the overall surface acidity of mixed (Ga,Al)(2)O(3) oxides. Notably, we demonstrate that (Ga,Al)(2)O(3) catalysts with a high Al content show a greater relative abundance of four-coordinated Ga sites and a greater relative fraction of weak/medium Ga-based surface Lewis acid sites, which correlates with superior propene selectivity, Ga-based activity, and stability in PDH (due to lower coking). In contrast, (Ga,Al)(2)O(3) catalysts with a lower Al content feature a higher fraction of six-coordinated Ga sites, as well as more abundant Ga-based strong surface Lewis acid sites, which deactivate through coking. Overall, the results show that the relative abundance and strength of Ga-based surface Lewis acid sites can be tuned by optimizing the bulk Ga : Al atomic ratio, thus providing an effective measure for a rational control of the catalyst performance. The Royal Society of Chemistry 2021-11-12 /pmc/articles/PMC8635172/ /pubmed/34976347 http://dx.doi.org/10.1039/d1sc05381g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Castro-Fernández, Pedro
Kaushik, Monu
Wang, Zhuoran
Mance, Deni
Kountoupi, Evgenia
Willinger, Elena
Abdala, Paula M.
Copéret, Christophe
Lesage, Anne
Fedorov, Alexey
Müller, Christoph R.
Uncovering selective and active Ga surface sites in gallia–alumina mixed-oxide propane dehydrogenation catalysts by dynamic nuclear polarization surface enhanced NMR spectroscopy
title Uncovering selective and active Ga surface sites in gallia–alumina mixed-oxide propane dehydrogenation catalysts by dynamic nuclear polarization surface enhanced NMR spectroscopy
title_full Uncovering selective and active Ga surface sites in gallia–alumina mixed-oxide propane dehydrogenation catalysts by dynamic nuclear polarization surface enhanced NMR spectroscopy
title_fullStr Uncovering selective and active Ga surface sites in gallia–alumina mixed-oxide propane dehydrogenation catalysts by dynamic nuclear polarization surface enhanced NMR spectroscopy
title_full_unstemmed Uncovering selective and active Ga surface sites in gallia–alumina mixed-oxide propane dehydrogenation catalysts by dynamic nuclear polarization surface enhanced NMR spectroscopy
title_short Uncovering selective and active Ga surface sites in gallia–alumina mixed-oxide propane dehydrogenation catalysts by dynamic nuclear polarization surface enhanced NMR spectroscopy
title_sort uncovering selective and active ga surface sites in gallia–alumina mixed-oxide propane dehydrogenation catalysts by dynamic nuclear polarization surface enhanced nmr spectroscopy
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8635172/
https://www.ncbi.nlm.nih.gov/pubmed/34976347
http://dx.doi.org/10.1039/d1sc05381g
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