<p>Amines are among the most common functional groups in bioactive molecules<sup><CitationRef CitationID="CR1">1</CitationRef></sup>. Despite this prevalence, conventional means of converting aromatic amines rely heavily on diazonium intermediates<sup><CitationRef CitationID="CR2">2</CitationRef></sup>, which pose significant safety risks due to the explosive nature of these salts<sup><CitationRef CitationID="CR3">3</CitationRef>,<CitationRef CitationID="CR4">4</CitationRef></sup>. Here we report a direct deaminative strategy through the formation of <i>N</i>-nitroamines, allowing the direct conversion of inert aromatic C−N bonds into an array of other functional groups, including C−X (C−Br, C−Cl, C−I, C−F, C−N, C−S, C−Se, C−O) and C−C bonds. This operationally simple, general protocol establishes a unified strategy for one-pot deaminative cross-couplings by integrating deaminative functionalization with transition-metal-catalysed arylation, thereby streamlining synthesis and late-stage functionalization. The key advantage of this transformation over other deaminative functionalization methods lies in its versatility across nearly all classes of medicinally relevant heteroaromatic amines, as well as electronically and structurally diverse aniline derivatives, regardless of the position of the amino group. Mechanistic studies, supported by both experimental observations and theoretical analysis, suggest that the aryl cation equivalent reactivity of <i>N</i>-nitroamines is generally favoured in this deaminative process. This study highlights the potential of the direct deamination approach in synthetic chemistry, offering a safer alternative to the traditionally explosive and hazardous aryldiazonium chemistry.</p>

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Direct deaminative functionalization with N-nitroamines

  • Guangliang Tu,
  • Ke Xiao,
  • Xiaoping Chen,
  • Haoran Xu,
  • Haifeng Zeng,
  • Fangjiang Zhang,
  • Xiao-Song Xue,
  • Xiaheng Zhang

摘要

Amines are among the most common functional groups in bioactive molecules1. Despite this prevalence, conventional means of converting aromatic amines rely heavily on diazonium intermediates2, which pose significant safety risks due to the explosive nature of these salts3,4. Here we report a direct deaminative strategy through the formation of N-nitroamines, allowing the direct conversion of inert aromatic C−N bonds into an array of other functional groups, including C−X (C−Br, C−Cl, C−I, C−F, C−N, C−S, C−Se, C−O) and C−C bonds. This operationally simple, general protocol establishes a unified strategy for one-pot deaminative cross-couplings by integrating deaminative functionalization with transition-metal-catalysed arylation, thereby streamlining synthesis and late-stage functionalization. The key advantage of this transformation over other deaminative functionalization methods lies in its versatility across nearly all classes of medicinally relevant heteroaromatic amines, as well as electronically and structurally diverse aniline derivatives, regardless of the position of the amino group. Mechanistic studies, supported by both experimental observations and theoretical analysis, suggest that the aryl cation equivalent reactivity of N-nitroamines is generally favoured in this deaminative process. This study highlights the potential of the direct deamination approach in synthetic chemistry, offering a safer alternative to the traditionally explosive and hazardous aryldiazonium chemistry.