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Combined experimental and computational study of Al(2)O(3) catalyzed transamidation of secondary amides with amines

Amides are the most extensively used substances in both synthetic organic and bioorganic chemistry. Unfortunately, the traditional synthesis of amides suffers from some important drawbacks, including low atom efficiency, high catalyst loading, separation of products from the reaction mixture and pro...

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Autores principales: Ali, Md Ayub, Nath, Ashutosh, Islam, Md Midul, Shaheed, Sharmin Binte, Dibbo, Ifat Nur
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8996366/
https://www.ncbi.nlm.nih.gov/pubmed/35425074
http://dx.doi.org/10.1039/d2ra00450j
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author Ali, Md Ayub
Nath, Ashutosh
Islam, Md Midul
Shaheed, Sharmin Binte
Dibbo, Ifat Nur
author_facet Ali, Md Ayub
Nath, Ashutosh
Islam, Md Midul
Shaheed, Sharmin Binte
Dibbo, Ifat Nur
author_sort Ali, Md Ayub
collection PubMed
description Amides are the most extensively used substances in both synthetic organic and bioorganic chemistry. Unfortunately, the traditional synthesis of amides suffers from some important drawbacks, including low atom efficiency, high catalyst loading, separation of products from the reaction mixture and production of byproducts. Al(2)O(3) is an amphoteric catalyst that activates the carbonyl carbon of the secondary amide group and helps the C–N cleavage of the reactant amide group by attacking the N–H hydrogen. By using the concepts of amphoteric properties of Al(2)O(3), amides were synthesized from secondary amides and amines in the presence of triethylamine solvent. Several aliphatic and aromatic amines were used for the transamidation of N-methylbenzamide in the presence of the Al(2)O(3) catalyst. Moreover, using the Gaussian09 software at the DFT level, HUMO, LUMO and the intrinsic reaction coordinates (IRCs) have also been calculated to find out the transition state of the reaction and energy. In this study, five successful compounds were synthesized by the transamidation of secondary amides with amines using a reusable Al(2)O(3) catalyst. The catalyst was reused several times with no significant loss in its catalytic activity. The products were purified by recrystallization and column chromatography techniques. This catalytic method is effective for the simultaneous activation of the carbonyl group and N–H bond by using the Al(2)O(3) catalyst.
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spelling pubmed-89963662022-04-13 Combined experimental and computational study of Al(2)O(3) catalyzed transamidation of secondary amides with amines Ali, Md Ayub Nath, Ashutosh Islam, Md Midul Shaheed, Sharmin Binte Dibbo, Ifat Nur RSC Adv Chemistry Amides are the most extensively used substances in both synthetic organic and bioorganic chemistry. Unfortunately, the traditional synthesis of amides suffers from some important drawbacks, including low atom efficiency, high catalyst loading, separation of products from the reaction mixture and production of byproducts. Al(2)O(3) is an amphoteric catalyst that activates the carbonyl carbon of the secondary amide group and helps the C–N cleavage of the reactant amide group by attacking the N–H hydrogen. By using the concepts of amphoteric properties of Al(2)O(3), amides were synthesized from secondary amides and amines in the presence of triethylamine solvent. Several aliphatic and aromatic amines were used for the transamidation of N-methylbenzamide in the presence of the Al(2)O(3) catalyst. Moreover, using the Gaussian09 software at the DFT level, HUMO, LUMO and the intrinsic reaction coordinates (IRCs) have also been calculated to find out the transition state of the reaction and energy. In this study, five successful compounds were synthesized by the transamidation of secondary amides with amines using a reusable Al(2)O(3) catalyst. The catalyst was reused several times with no significant loss in its catalytic activity. The products were purified by recrystallization and column chromatography techniques. This catalytic method is effective for the simultaneous activation of the carbonyl group and N–H bond by using the Al(2)O(3) catalyst. The Royal Society of Chemistry 2022-04-11 /pmc/articles/PMC8996366/ /pubmed/35425074 http://dx.doi.org/10.1039/d2ra00450j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ali, Md Ayub
Nath, Ashutosh
Islam, Md Midul
Shaheed, Sharmin Binte
Dibbo, Ifat Nur
Combined experimental and computational study of Al(2)O(3) catalyzed transamidation of secondary amides with amines
title Combined experimental and computational study of Al(2)O(3) catalyzed transamidation of secondary amides with amines
title_full Combined experimental and computational study of Al(2)O(3) catalyzed transamidation of secondary amides with amines
title_fullStr Combined experimental and computational study of Al(2)O(3) catalyzed transamidation of secondary amides with amines
title_full_unstemmed Combined experimental and computational study of Al(2)O(3) catalyzed transamidation of secondary amides with amines
title_short Combined experimental and computational study of Al(2)O(3) catalyzed transamidation of secondary amides with amines
title_sort combined experimental and computational study of al(2)o(3) catalyzed transamidation of secondary amides with amines
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8996366/
https://www.ncbi.nlm.nih.gov/pubmed/35425074
http://dx.doi.org/10.1039/d2ra00450j
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