Strategic Formation of Indoles Using Phenyl Hydrazine as a Key Reagent

Indole formation from phenylhydrazine represents one of the most versatile and mechanistically rich domains in heterocyclic synthesis, bridging classical Fischer indolisation with emerging transition‐metal‐catalyzed and tandem methodologies. Transition‐metal catalysis, such as Rh(III), Ru(II), and Co(III) complexes, has been used for C─H activation, oxidative annulation, and redox‐neutral coupling that yield high selectivity and diverse functional group‐containing indoles. Moreover, hydroformylation‐assisted Fischer reactions, ligand‐controlled rearrangements, and acid‐promoted condensations have demonstrated controllable C2/C3‐substitution and regioselectivity across alkenes, aldehydes, and cyclic precursors. Collectively, these advancements establish phenyl hydrazine as a robust scaffold for the synthesis of multifaceted indoles. This review encompasses alkyne, alcohol, ester, ketone, carboxamide acid, alkene, cyclic ether, and aldehyde routes to diversely substituted indoles.

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Journal
European Journal of Organic Chemistry
Published
2026-09-30
DOI
https://doi.org/10.1002/ejoc.70878
Primary Topic
Catalytic C–H Functionalization Methods
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article
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article

Strategic Formation of Indoles Using Phenyl Hydrazine as a Key Reagent

Surendra K. Puri, Devendra Singh Negi, Amit Kumar Verma, Anuj Yadav
European Journal of Organic Chemistry
Catalytic C–H Functionalization Methods
article

Strategic Formation of Indoles Using Phenyl Hydrazine as a Key Reagent

Surendra K. Puri, Devendra Singh Negi, Amit Kumar Verma, Anuj Yadav
article en

Abstract

Indole formation from phenylhydrazine represents one of the most versatile and mechanistically rich domains in heterocyclic synthesis, bridging classical Fischer indolisation with emerging transition‐metal‐catalyzed and tandem methodologies. Transition‐metal catalysis, such as Rh(III), Ru(II), and Co(III) complexes, has been used for C─H activation, oxidative annulation, and redox‐neutral coupling that yield high selectivity and diverse functional group‐containing indoles. Moreover, hydroformylation‐assisted Fischer reactions, ligand‐controlled rearrangements, and acid‐promoted condensations have demonstrated controllable C2/C3‐substitution and regioselectivity across alkenes, aldehydes, and cyclic precursors. Collectively, these advancements establish phenyl hydrazine as a robust scaffold for the synthesis of multifaceted indoles. This review encompasses alkyne, alcohol, ester, ketone, carboxamide acid, alkene, cyclic ether, and aldehyde routes to diversely substituted indoles.

European Journal of Organic Chemistry
Hemwati Nandan Bahuguna Garhwal University (IN)
Openalex Percentile: Top 23%
Catalytic C–H Functionalization Methods
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Strategic Formation of Indoles Using Phenyl Hydrazine as a Key Reagent — Surendra K. Puri, Devendra Singh Negi, et al. · European Journal of Organic Chemistry (2026) | TGRS Research Map | TGRS