Abstract
A convenient one-pot synthetic protocol for the preparation of sulfonyl amidines has been developed. The procedure combines three-component reaction of sulfonyl azide, methyl propiolate and secondary cyclic amine coupling in one sequence without any solvent or catalyst and at room temperature. The reaction proceeds smoothly and a variety of desired sulfonyl amidines were obtained in moderate to good yields. This protocol has synthetic advantages in terms of low environmental impact and very short reaction time.
Author Contributions
Copyright© 2021
Adiche Chiaa, et al.
License
This work is licensed under a Creative Commons Attribution 4.0 International License.
This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
Competing interests The authors have declared that no competing interests exist.
Funding Interests:
Citation:
Introduction
Multicomponent reactions (MCRs) are a powerful tool for the synthesis of complex molecules with broad structural diversity in a single operation. Indeed, a broad range of nitrogen compounds containing an amidine moiety have interesting biological properties, such as anti-inflammatory, There are several strategies described in the literature for the synthesis of amidines. Therefore, the development of a mild, simple, fast and novel method with attractive features such as easily accessible starting materials, mild reaction conditions, and non-toxic side products to generate structural diversity sulfonyl amidines is still desirable because of their biological significance. As a continuation of our interest in developing new green synthetic methods of sulfonyl amidines,
Results
Sulfonyl amidines The structure of synthesized sulfonyl amidines 3-5 was confirmed mainly by a combination of the usual spectroscopic methods (IR, 1H, 13C, DEPT NMR) elemental analysis, and the mass spectra which gave good agreement with the proposed structures. The reaction conditions for a sequential one-pot procedure were optimized using different solvents, as illustrated in aReaction conditions: tosylazide Preliminary experiments were carried out with tosylazide To extend the general applicability and the reactivity of this three-component reaction, several substituted sulfonyl azides Arenesulfonylazides were successfully employed as efficient reacting partners in three-component coupling with methyl propiolate and morpholine to afford the corresponding sulfonyl amidines ( aReaction conditions: arenesulfonylazide In addition, the system was applied to other amines. The results obtained for the synthesis of sulfonyl amidines ( Using piperidine as nucleophilic partner, we evaluated the ability to perform the three-component reaction. This reaction sequence generated the corresponding sulfonyl amidines ( Difference in reactivity was also observed when pyrrolidine was used. The results obtained for the synthesis of sulfonyl amidines ( aReaction conditions: arenesulfonylazide aReaction conditions: arenesulfonylazide Next, we performed to prepare sulfonyl amidines by way of the pyrrolidine according to the same sequence and under the same conditions as the previous reactions. This reaction produces the corresponding sulfonyl amidines On the basis of our experimental results, together studies in literature First the secondary cyclic amine reacts with methyl propiolate through a hydroamination reaction to afford corresponding enamine. Then, the formed enamine reacts with arenesulfonylazide to yield the unstable D
Conclusion
In conclusion, we have developed a fast, efficient, easy, and practical three-component reaction of arenesulfonylazides, methyl propiolate and secondary cyclic amines to produce sulfonyl amidines. The reactions were performed without any solvent or catalyst, at room temperature, very short reaction time and with moderate to good yields. Compared to previously other reported synthesis of sulfonyl amidines, this protocol is highlighted by its simplicity, atom economical nature and green operational method.