4.7 Article

Controlling Pd-Catalyzed N-Arylation and Dimroth Rearrangement in the Synthesis of N,1-Diaryl-1H-tetrazol-5-amines

Journal

JOURNAL OF ORGANIC CHEMISTRY
Volume 86, Issue 6, Pages 4794-4803

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.joc.1c00282

Keywords

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Funding

  1. Ministry of Education, Science, and Technological Development of Republic of Serbia [451-03-9/2021-14/200168, 451-03-9/2021-14/200288, 451-03-9/2021-14/200026]
  2. Serbian Academy of Sciences and Arts under strategic projects programme [01-2019F65]
  3. FP7 RegPot project FCUB ERA [256716]

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The Pd-catalyzed N-arylation method was used to synthesize eighteen N,1-diaryl-1H-tetrazol-5-amine derivatives, with the suppression of Dimroth rearrangement. Through comprehensive experiments, NMR analysis, and DFT calculations, it was found that the Dimroth rearrangement is thermodynamically controlled and depends on the stability of the corresponding isomers. Further investigations revealed that the opening of the tetrazole ring is the rate-determining step in the mechanism.
The Pd-catalyzed N-arylation method for the synthesis of eighteen N,1-diaryl-1H-tetrazol-5-amine derivatives is reported. By running the reactions at 35 degrees C, compounds were isolated as single isomers since the undesired Dimroth rearrangement was completely suppressed. Furthermore, the Dimroth rearrangement of N,1-diaryl-1H-tetrazol-5-amines was rationalized by conducting comprehensive experiments and NMR analysis as well as density functional theory (DFT) calculations of thermodynamic stability of the compounds. It was established that the Dimroth rearrangement is thermodynamically controlled, and the equilibrium of the reaction is determined by the stability of the corresponding isomers. The mechanism was investigated by additional DFT calculations, and the opening of the tetrazole ring was shown to be the rate-determining step. By maneuvering Pd-catalyzed N-arylation and the subsequent Dimroth rearrangement, two more N,1-diaryl-1H-tetrazol-5-amine derivatives were acquired, which otherwise cannot be synthesized by employing the C-N cross-coupling reaction.

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