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In this review, we focus on some interesting and recent examples of various applications of organic azides such as their intermolecular or intramolecular, under thermal, catalyzed, or noncatalyzed reaction conditions. The aforementioned reactions in the aim to prepare basic five-, six-, organometallic heterocyclic-membered systems and/or their fused analogs. This review article also provides a report on the developed methods describing the synthesis of various heterocycles from organic azides, especially those reported in recent papers (till 2020). At the outset, this review groups the synthetic methods of organic azides into different categories. Secondly, the review deals with the functionality of the azido group in chemical reactions. This is followed by a major section on the following: (1) the synthetic tools of various heterocycles from the corresponding organic azides by one-pot domino reaction; (2) the utility of the chosen catalysts in the chemoselectivity favoring C-H and C-N bonds; (3) one-pot procedures (i.e., Ugi four-component reaction); (4) nucleophilic addition, such as Aza-Michael addition; (5) cycloaddition reactions, such as [3+2] cycloaddition; (6) mixed addition/cyclization/oxygen; and (7) insertion reaction of C-H amination. The review also includes the synthetic procedures of fused heterocycles, such as quinazoline derivatives and organometal heterocycles (i.e., phosphorus-, boron- and aluminum-containing heterocycles). Due to many references that have dealt with the reactions of azides in heterocyclic synthesis (currently more than 32,000), we selected according to generality and timeliness. This is considered a recent review that focuses on selected interesting examples of various heterocycles from the mechanistic aspects of organic azides.
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http://dx.doi.org/10.3390/molecules27123716 | DOI Listing |
Inorg Chem
September 2025
Institute of Inorganic Chemistry of Czech Academy of Sciences, Husinec-Řež 1001, 250 68, Czech Republic.
We report the synthesis and reactivity of phenylpyridine-based boron azides readily accessible via nucleophilic substitution from generated borenium-type precursors. Three azides were obtained: a hydridic species (L)BHN (L = 2-phenylpyridine), a cyclopentyl-substituted analogue (L)B(cyclopentyl)N, and a boron diazide (L)B(N) obtained as a byproduct from the synthesis of (L)BHN. The prepared borane azides exhibit notable thermal and photochemical robustness, with decomposition temperatures around 140 °C in mesitylene solution and above 170 °C in the solid state, as evidenced by DSC/TGA analysis.
View Article and Find Full Text PDFJ Org Chem
September 2025
Yunnan Key Laboratory of Modern Separation Analysis and Substance Transformation, College of Chemistry and Chemical Engineering, Yunnan Normal University, Kunming 650500, China.
The generation of α-imino metal carbenes from readily available alkynes via nitrene transfer has emerged as an important advancement in carbene chemistry, but current methodologies remain constrained to noble-metal catalysts. Additionally, the dearomatization involving α-imino metal carbenes has not been unexplored. In this study, we disclose a copper-catalyzed dearomatization reaction of azides with ynamide-phenol derivatives via α-imino copper carbenes.
View Article and Find Full Text PDFRSC Adv
August 2025
Catalysts and Organic Synthesis Research Laboratory, Department of Chemistry, Iran University of Science and Technology Tehran 16846-13114 Iran +98-21-77491204 +98-21-77240516-7.
Tetrazoles are highly significant in pharmaceuticals, drug delivery, and anticancer treatments. In this work, the development of a highly effective nanocatalyst, which was synthesized by functionalizing nanodiamonds (NDs) substrate with folic acid (FA) and stabilizing Cu(ii) on the nanocomposite. The ND@FA-Cu(ii) nanocatalyst has demonstrated superior thermal stability, non-toxicity, little catalyst consumption, and reusability (up to five cycles), rendering it both cost-effective and environmentally sustainable.
View Article and Find Full Text PDFOrg Lett
September 2025
Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic, Flemingovo nám. 2, 166 10 Prague, Czech Republic.
A reaction between azide, alkyne and 2-azirine resulted in C-C bond formation at position five of 1,2,3-triazole, instead of previously misidentified C-N bond connectivity. The reaction mechanism of this C-C bond formation on the triazole ring was fully explained by employing calibrated QM(DFT-D3) calculations. Functionalization of primary products provided substituted pyrimidine, furan or 1,3-oxazepine.
View Article and Find Full Text PDFChemistry
September 2025
Department of Inorganic and Physical Chemistry, Indian Institute of Science, Bangalore, 560012, India.
Rigid and conformationally restricted dichalcogenides based on 1,8-naphthyl system have attracted significant interest as electron donors in charge transfer complexes and organic electrode materials. Recently, naphthalene-1,8-peri-diselenides have been shown to mimic the function of two major selenoenzymes - iodothyronine deiodinase (Dio) and glutathione peroxidase (GPx) - mainly through two-electron redox processes involving deiodination of thyroid hormones and thiol-mediated reduction of hydrogen peroxide, respectively. Herein, we report that naphthalene-1,8-peri-dichalcogenides can mediate a six-electron reduction of organic nitro compounds to produce the corresponding primary amines at physiologically relevant temperature (37 °C) using water as the solvent.
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