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Integrated conversion of 1-butanol to 1,3-butadiene
Renewed interest in production of 1,3-butadiene from non-petroleum sources has motivated research into novel production routes. In this study, we investigated an integrated process comprising 1-butanol dehydration over a γ-Al(2)O(3) catalyst to produce a mixture of linear butenes, coupled with a dow...
Autores principales: | , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
The Royal Society of Chemistry
2018
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9081732/ https://www.ncbi.nlm.nih.gov/pubmed/35540262 http://dx.doi.org/10.1039/c8ra02977f |
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author | Kruger, Jacob S. Dong, Tao Beckham, Gregg T. Biddy, Mary J. |
author_facet | Kruger, Jacob S. Dong, Tao Beckham, Gregg T. Biddy, Mary J. |
author_sort | Kruger, Jacob S. |
collection | PubMed |
description | Renewed interest in production of 1,3-butadiene from non-petroleum sources has motivated research into novel production routes. In this study, we investigated an integrated process comprising 1-butanol dehydration over a γ-Al(2)O(3) catalyst to produce a mixture of linear butenes, coupled with a downstream K-doped Cr(2)O(3)/Al(2)O(3) catalyst to convert the butenes into butadiene. Linear butene yields greater than 90% are achievable at 360 °C in the dehydration step, and single-pass 1,3-butadiene yields greater than 40% are achieved from 1-butene in a N(2) atmosphere in the dehydrogenation step. In the integrated process, 1,3-butadiene yields are 10–15%. In all cases, linear C4 selectivity is greater than 90%, suggesting that 1,3-butadiene yields could be significantly improved in a recycle reactor. Doping the Cr(2)O(3) catalyst with different metals to promote H(2) consumption in a CO(2) atmosphere did not have a large effect on catalyst performance compared to an undoped Cr(2)O(3) catalyst, although doping with K in an N(2)-diluted atmosphere and with Ni in a CO(2)-enriched atmosphere showed slight improvement. In contrast, doping with K and Ca in a CO(2)-enriched atmosphere showed slightly decreased performance. Similarly, employing a CO(2)-enriched atmosphere in general did not improve 1,3-butadiene yield or selectivity compared to reactions performed in N(2). Overall, this study suggests that an integrated dehydration/dehydrogenation process to convert 1-butanol into 1,3-butadiene could be feasible with further catalyst and process development. |
format | Online Article Text |
id | pubmed-9081732 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2018 |
publisher | The Royal Society of Chemistry |
record_format | MEDLINE/PubMed |
spelling | pubmed-90817322022-05-09 Integrated conversion of 1-butanol to 1,3-butadiene Kruger, Jacob S. Dong, Tao Beckham, Gregg T. Biddy, Mary J. RSC Adv Chemistry Renewed interest in production of 1,3-butadiene from non-petroleum sources has motivated research into novel production routes. In this study, we investigated an integrated process comprising 1-butanol dehydration over a γ-Al(2)O(3) catalyst to produce a mixture of linear butenes, coupled with a downstream K-doped Cr(2)O(3)/Al(2)O(3) catalyst to convert the butenes into butadiene. Linear butene yields greater than 90% are achievable at 360 °C in the dehydration step, and single-pass 1,3-butadiene yields greater than 40% are achieved from 1-butene in a N(2) atmosphere in the dehydrogenation step. In the integrated process, 1,3-butadiene yields are 10–15%. In all cases, linear C4 selectivity is greater than 90%, suggesting that 1,3-butadiene yields could be significantly improved in a recycle reactor. Doping the Cr(2)O(3) catalyst with different metals to promote H(2) consumption in a CO(2) atmosphere did not have a large effect on catalyst performance compared to an undoped Cr(2)O(3) catalyst, although doping with K in an N(2)-diluted atmosphere and with Ni in a CO(2)-enriched atmosphere showed slight improvement. In contrast, doping with K and Ca in a CO(2)-enriched atmosphere showed slightly decreased performance. Similarly, employing a CO(2)-enriched atmosphere in general did not improve 1,3-butadiene yield or selectivity compared to reactions performed in N(2). Overall, this study suggests that an integrated dehydration/dehydrogenation process to convert 1-butanol into 1,3-butadiene could be feasible with further catalyst and process development. The Royal Society of Chemistry 2018-07-02 /pmc/articles/PMC9081732/ /pubmed/35540262 http://dx.doi.org/10.1039/c8ra02977f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/ |
spellingShingle | Chemistry Kruger, Jacob S. Dong, Tao Beckham, Gregg T. Biddy, Mary J. Integrated conversion of 1-butanol to 1,3-butadiene |
title | Integrated conversion of 1-butanol to 1,3-butadiene |
title_full | Integrated conversion of 1-butanol to 1,3-butadiene |
title_fullStr | Integrated conversion of 1-butanol to 1,3-butadiene |
title_full_unstemmed | Integrated conversion of 1-butanol to 1,3-butadiene |
title_short | Integrated conversion of 1-butanol to 1,3-butadiene |
title_sort | integrated conversion of 1-butanol to 1,3-butadiene |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9081732/ https://www.ncbi.nlm.nih.gov/pubmed/35540262 http://dx.doi.org/10.1039/c8ra02977f |
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