Computational Studies towards the Optimization of the Synthesis of 1,2,4‐Triazolo[1,5‐a]pyridine‐2‐carboxylate: Advantages of Continuous Flow Processing

Author:

Raymond Justine L.12ORCID,Detta Elena12ORCID,Alza Esther13ORCID,Fianchini Mauro14ORCID,Pericàs Miquel A.13ORCID

Affiliation:

1. Institute of Chemical Research of Catalonia (ICIQ) Av. Països Catalans, 16 43007 Tarragona Spain

2. AiCuris Anti-infective Cures AG Friedrich-Ebert-Str. 475 42117 Wuppertal Germany

3. Alza & Associates SL - Sustainable Chemistry Consulting Rn Canigó, 7–10 08950 Esplugues de Llobregat Barcelona Spain

4. MagnetoCat SL Calle General Polavieja 9 3 Izq 03012 Alicante Spain

Abstract

AbstractSeveral strategies to synthesize desired 1,2,4‐triazolo[1,5‐a]pyridine‐2‐carboxylate targets have been reported over the years. The most convenient way features the preparation of the precursor triazolopyridine‐N‐oxide through a condensation step between sulfilimines and a nitrile oxide species, followed by a deoxygenation step. This paper presents a detailed work on the synthesis of [1,2,4]triazolo[1,5‐a]pyridine‐2‐carboxylate‐N‐oxide, featuring a synergistic experimental‐theoretical approach. Herein, we report the development of an efficient and straightforward method to prepare ethyl [1,2,4]triazolo[1,5‐a]pyridine‐2‐carboxylate 3‐oxide in continuous flow. The transfer from batch to flow processing resulted in a significant boost in isolated yield (53 % vs. 31 %) and a decrease in the simultaneous presence of starting materials and product in the reaction media from 4 hours to 3.5 minutes. An in‐depth mechanistic study of the reaction using density functional theory provided a deeper understanding of the whole reaction manifold and key indications on how to further improve the process in flow.

Publisher

Wiley

Subject

Organic Chemistry,Physical and Theoretical Chemistry

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