Synlett 2016; 27(19): 2681-2684
DOI: 10.1055/s-0036-1588590
letter
© Georg Thieme Verlag Stuttgart · New York

DABCO/AcOH Jointly Accelerated Copper(I)-Catalysed Cycloaddition of Azides and Alkynes on Water at Room Temperature

Prashant B. Sarode
Department of Chemistry, G. S. Science, Arts and Commerce College, Khamgaon 444303, India   Email: chemants@gmail.com   Email: hschandak@gsck.ac.in
,
Sandeep P. Bahekar
Department of Chemistry, G. S. Science, Arts and Commerce College, Khamgaon 444303, India   Email: chemants@gmail.com   Email: hschandak@gsck.ac.in
,
Hemant S. Chandak*
Department of Chemistry, G. S. Science, Arts and Commerce College, Khamgaon 444303, India   Email: chemants@gmail.com   Email: hschandak@gsck.ac.in
› Author Affiliations
Further Information

Publication History

Received: 26 June 2016

Accepted after revision: 06 August 2016

Publication Date:
25 August 2016 (online)


Abstract

An expeditious room temperature protocol for the synthesis of 1,4-disubstituted 1,2,3-triazoles from terminal alkynes and substituted azides has been achieved using the combination of CuSO4-ascorbate/1,4-diazabicyclo[2.2.2]octane/acetic acid. This expeditious protocol is applicable to aryl, alkyl, and sulfonyl azides. Acetic acid accelerates the protonation of cuprated triazole and thus avoids the possible side reactions. Devoid of acetic acid, the reaction pathway alters to the ketinimine route and results in the formation of sulfonamides.

Supporting Information

 
  • References and Notes

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  • 13 1,4-Diphenyl-1H-1,2,3-triazole (3a) A mixture of CuSO4·5H2O (0.03 mmol), sodium ascorbate (0.12 mmol), and DABCO (0.06 mmol) in H2O (2 mL) was stirred vigorously at r.t. for 5 min. To this, AcOH (0.06 mmol), phenylacetylene (1a) (1 mmol), and phenyl azide (2a, 1 mmol) were added sequentially, and the resultant mixture was stirred until the substrates had been completely consumed (TLC monitoring). The reaction mixture was diluted by adding EtOAc (5 mL) and aq NH4Cl solution (3 mL). The mixture was stirred for an additional 30 min, and the two layers were separated. The aqueous layer was extracted with EtOAc (2 × 5 mL). The combined organic layers were dried over Na2SO4, filtered, and evaporated. The crude product thus obtained was recrystallized from EtOH to afford pure 1,4-diphenyl-1,2,3-triazole (3a) as a pale yellow solid; yield 0.160 g, 86%; mp 182–183 °C. 1H NMR (500 MHz, CDCl3): δ = 8.20 (s, 1 H), 7.93–7.91 (m, 2 H), 7.81–7.79 (m, 2 H), 7.58–7.54 (m, 2 H), 7.48–7.45 (m, 3 H), 7.39–7.36 (m, 1 H).
  • 14 CCDC 1479799 contains the supplementary crystallographic data for this paper. The data can be obtained free of charge from The Cambridge Crystallographic Data Centre via www.ccdc.cam.ac.uk/getstructures.
  • 16 2-Phenyl-N-tosylacetamide (4a) A mixture of CuSO4·5H2O (0.03 mmol), sodium ascorbate (0.12 mmol), and DABCO (0.06 mmol) in H2O (2 mL) was stirred vigorously at r.t. for 5 min. Alkyne 1a (1 mmol) and p-toluenesulfonyl azide (2j, 1 mmol) were added sequentially, and the resultant mixture was stirred until the substrates had been completely consumed (TLC monitoring). The reaction mixture was diluted by adding EtOAc (5 mL) and aq NH4Cl solution (3 mL), the mixture was stirred for an additional 30 min, and the two layers were separated. The aqueous layer was extracted with EtOAc (2 × 5 mL), the combined organic layers were dried over Na2SO4, filtered, and evaporated. The crude product so obtained was purified by recrystallization from EtOH to afford pure 2-phenyl-N-tosylacetamide (4a) as a white solid; yield 0.095 g, 64%; mp 148–149 °C. 1H NMR (500 MHz, CDCl3): δ = 7.87 (d, 2 H), 7.81 (br s, 1 H), 7.33 (m, 5 H), 7.14 (d, 2 H) 3.58 (s, 2 H), 2.44 (s, 3 H).