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Toward High Selectivity Aniline Synthesis Catalysis at Elevated Temperatures

[Image: see text] In connection with an initiative to enhance heat recovery from the large-scale operation of a heterogeneously catalyzed nitrobenzene hydrogenation process to produce aniline, it is necessary to operate the process at elevated temperatures (>100 °C), a condition that can compromi...

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Autores principales: Morisse, Clément G.A., McCullagh, Annelouise M., Campbell, James W., How, Colin, MacLaren, Donald A., Carr, Robert H., Mitchell, Chris J., Lennon, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8802303/
https://www.ncbi.nlm.nih.gov/pubmed/35115738
http://dx.doi.org/10.1021/acs.iecr.1c03695
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author Morisse, Clément G.A.
McCullagh, Annelouise M.
Campbell, James W.
How, Colin
MacLaren, Donald A.
Carr, Robert H.
Mitchell, Chris J.
Lennon, David
author_facet Morisse, Clément G.A.
McCullagh, Annelouise M.
Campbell, James W.
How, Colin
MacLaren, Donald A.
Carr, Robert H.
Mitchell, Chris J.
Lennon, David
author_sort Morisse, Clément G.A.
collection PubMed
description [Image: see text] In connection with an initiative to enhance heat recovery from the large-scale operation of a heterogeneously catalyzed nitrobenzene hydrogenation process to produce aniline, it is necessary to operate the process at elevated temperatures (>100 °C), a condition that can compromise aniline selectivity. Alumina-supported palladium catalysts are selected as candidate materials that can provide sustained aniline yields at elevated temperatures. Two Pd/Al(2)O(3) catalysts are examined that possess comparable mean Pd particle sizes (∼5 nm) for different Pd loading: 5 wt % Pd/Al(2)O(3) and 0.3 wt % Pd/Al(2)O(3). The higher Pd loading sample represents a reference catalyst for which the Pd crystallite morphology has previously been established. The lower Pd loading technical catalyst more closely corresponds to industrial specifications. The morphology of the Pd crystallites of the 0.3 wt % Pd/Al(2)O(3) sample is explored by means of temperature-programmed infrared spectroscopy of chemisorbed CO. Reaction testing over the range of 60–180 °C shows effectively complete nitrobenzene conversion for both catalysts but with distinction in their selectivity profiles. The low loading catalyst is favored as it maximizes aniline selectivity and avoids the formation of overhydrogenated products. A plot of aniline yield as a function of WHSV for the 0.3 wt % Pd/Al(2)O(3) catalyst at 100 °C yields a “volcano” like curve, indicating aniline selectivity to be sensitive to residence time. These observations are brought together to provide an indication of an aniline synthesis catalyst specification suited to a unit operation equipped for enhanced heat transfer.
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spelling pubmed-88023032022-02-01 Toward High Selectivity Aniline Synthesis Catalysis at Elevated Temperatures Morisse, Clément G.A. McCullagh, Annelouise M. Campbell, James W. How, Colin MacLaren, Donald A. Carr, Robert H. Mitchell, Chris J. Lennon, David Ind Eng Chem Res [Image: see text] In connection with an initiative to enhance heat recovery from the large-scale operation of a heterogeneously catalyzed nitrobenzene hydrogenation process to produce aniline, it is necessary to operate the process at elevated temperatures (>100 °C), a condition that can compromise aniline selectivity. Alumina-supported palladium catalysts are selected as candidate materials that can provide sustained aniline yields at elevated temperatures. Two Pd/Al(2)O(3) catalysts are examined that possess comparable mean Pd particle sizes (∼5 nm) for different Pd loading: 5 wt % Pd/Al(2)O(3) and 0.3 wt % Pd/Al(2)O(3). The higher Pd loading sample represents a reference catalyst for which the Pd crystallite morphology has previously been established. The lower Pd loading technical catalyst more closely corresponds to industrial specifications. The morphology of the Pd crystallites of the 0.3 wt % Pd/Al(2)O(3) sample is explored by means of temperature-programmed infrared spectroscopy of chemisorbed CO. Reaction testing over the range of 60–180 °C shows effectively complete nitrobenzene conversion for both catalysts but with distinction in their selectivity profiles. The low loading catalyst is favored as it maximizes aniline selectivity and avoids the formation of overhydrogenated products. A plot of aniline yield as a function of WHSV for the 0.3 wt % Pd/Al(2)O(3) catalyst at 100 °C yields a “volcano” like curve, indicating aniline selectivity to be sensitive to residence time. These observations are brought together to provide an indication of an aniline synthesis catalyst specification suited to a unit operation equipped for enhanced heat transfer. American Chemical Society 2021-12-02 2021-12-15 /pmc/articles/PMC8802303/ /pubmed/35115738 http://dx.doi.org/10.1021/acs.iecr.1c03695 Text en © 2021 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Morisse, Clément G.A.
McCullagh, Annelouise M.
Campbell, James W.
How, Colin
MacLaren, Donald A.
Carr, Robert H.
Mitchell, Chris J.
Lennon, David
Toward High Selectivity Aniline Synthesis Catalysis at Elevated Temperatures
title Toward High Selectivity Aniline Synthesis Catalysis at Elevated Temperatures
title_full Toward High Selectivity Aniline Synthesis Catalysis at Elevated Temperatures
title_fullStr Toward High Selectivity Aniline Synthesis Catalysis at Elevated Temperatures
title_full_unstemmed Toward High Selectivity Aniline Synthesis Catalysis at Elevated Temperatures
title_short Toward High Selectivity Aniline Synthesis Catalysis at Elevated Temperatures
title_sort toward high selectivity aniline synthesis catalysis at elevated temperatures
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8802303/
https://www.ncbi.nlm.nih.gov/pubmed/35115738
http://dx.doi.org/10.1021/acs.iecr.1c03695
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