As the search for competent soft-Lewis basic complexants for separations continues to evolve toward identification of a chemoselective moiety for speciation of the minor actinides from the electronically similar lanthanides, synthetic methods must congruently evolve. Synthetic options to convergently construct unsymmetric heteroaryl donor complexants incorporating a 1,2,3-triazole from accessible starting materials for evaluation in separation assays necessitated the development of the described methodology. In this report, metal- and azide-free synthesis of diversely functionalized pyridyl-1,2,3-triazole derivatives facilitated by microwave irradiation was leveraged to prepare a novel class of tridentate ligands. The described work negates the incorporation of thermally sensitive and toxic organoazides by using N-tosylhydrazones and anilines as viable synthetic equivalents in an efficient 12 min reaction time. Adaptation to alternative synthons useful for drug discovery was also realized. Method discovery, optimization, N-tosylhydrazone and aniline substrate scope, as well as a preliminary mechanistic hypotheses supported by DFT calculations are reported herein.
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http://dx.doi.org/10.1021/acs.joc.2c01042 | DOI Listing |
Chem Rec
November 2024
Laboratório de Síntese Orgânica Limpa-LASOL, CCQFA, Universidade Federal de Pelotas-UFPel, P.O. Box 354, 96010-900, Pelotas, RS, Brazil.
This report outlines the evolution and recent progress about the different protocols to synthesize the N-heterocycles fused hybrids, specifically [1,2,3]triazolo[1,5-a]quinoline. This review encompasses a broad range of approaches, describing several reactions for obtaining this since, such as dehydrogenative cyclization, oxidative N-N coupling, Dieckmann condensation, intramolecular Heck, (3+2)-cycloaddition, Ullman-type coupling and direct intramolecular arylation reactions. We divided this review in three section based in the starting materials to synthesize the target [1,2,3]triazolo[1,5-a]quinolines.
View Article and Find Full Text PDFJ Am Chem Soc
September 2024
Faculty of Chemistry and Biochemistry, Ruhr-University Bochum, Universitaetsstrasse 150, Bochum 44801, Germany.
Org Biomol Chem
January 2024
National Key Laboratory of Green Pesticide, International Joint Research Center for Intelligent Biosensor Technology and Health, Central China Normal University, Wuhan 430079, P.R. China.
An iodine-mediated cyclization has been developed to 4-aryl--1,2,3-triazoles, with -toluenesulfonyl hydrazide and sulfamic acid used as nitrogen sources. Sulfamic acid plays a crucial role in this reaction by both acting as a substrate and providing an acidic environment. This reaction offers a metal- and azide-free strategy to access -1,2,3-triazoles.
View Article and Find Full Text PDFJ Org Chem
June 2023
School of Chemical Sciences, Central University of Gujarat, Gandhinagar 382030, Gujarat, India.
A short enantioselective and azide-free synthesis of antiepileptic drug ()-lacosamide and pain reliever ()-lacosamide on a large scale has been articulated from an uncommon chiral synthon "glycine enolate equivalent of 4-benzyl--glycinyl oxazolidinone". Evans' asymmetric alkylation using -(-Boc-glycinyl) oxazolidinone was standardized to ensure the stereoselective formation of (Z)-enolate for a diastereofacial selection in the -alkylation process of chiral glycine enolate equivalent with different alkyl halides such as methyl iodide, methoxymethyl chloride, benzyl bromide, -NOCHCHBr, allyl bromide, and -OCHCHCHBr in the presence of lithium diisopropyl amide at -78 °C in THF. This optimized asymmetric -alkylation method with methoxymethyl chloride on lithium-mediated (Z)-enolate of (4/4)-4-benzyl--glycinyl oxazolidinones was extended following other subsequent reactions to produce the final lacosamides with no racemization in ∼36 to 45% overall yields from commercially available 4-benzyl-2-oxazolidinone and -Boc-glycine.
View Article and Find Full Text PDFOrg Lett
March 2023
Laboratorium für Organische Chemie, ETH Zürich, Vladimir-Prelog-Weg 3, HCI, 8093 Zürich, Switzerland.
A broadly applicable and efficient method for the synthesis of -alkyliminophosphoranes from phosphines that does not use potentially hazardous alkyl azides is reported. Under iron catalysis, a hydroxylamine-derived triflic acid salt oxidizes phosphines to a wide range of iminophosphorane triflic acid salts. Diphosphines afford phosphine-iminophosphoranes that can serve as ligands in transition metal complexes.
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