volume 22 issue 5 pages 372-378

High-Pressure Pathway in the Two-Stage Synthesis of 5-Amino-3-Hydroxy-1-Phenyl-1H-Pyrazole

Publication typeJournal Article
Publication date2025-05-01
scimago Q4
wos Q4
SJR0.203
CiteScore1.5
Impact factor1.0
ISSN15701786, 18756255
Abstract

5-amino-3-hydroxy-1-phenyl-1<i>H</i>-pyrazol and 3-amino-5-hydroxy-1-phenyl-1<i>H</i>-pyrazol are widely used as synthons in organic and pharmaceutical chemistry. We developed a high-yield synthesis method for 5-amino-3-hydroxy-1-phenyl-1<i>H</i>-pyrazol using high-pressure and base catalysis, achieving up to 80% yield. This method significantly outperforms existing techniques, which yield no more than 39%. The synthesis was performed at pressures up to 10 katm, both in solvent-free conditions and in the presence of solvents, such as methanol, ethanol, toluene, tert-butyl methyl ether, and 1,4-dioxane. Thermodynamic parameters of possible paths were calculated using the SMD-M06- 2X/MG3S method. Applying high pressure (7 katm) enables the solvent-free and catalyst-free synthesis of 2-cyano-N'-phenylacetohydrazide with a yield of 96%. This compound can subsequently be converted into 5-amino-3-hydroxy-1-phenyl-1<i>H</i>-pyrazol with yields of up to 90% using base catalysis. Additionally, the reaction pathways of phenylhydrazine with ethyl cyanoacetate and its anion have been explored. These pathways are discussed in terms of thermodynamic potentials calculated using the SMD-M06-2X/MG3S method. High pressure significantly accelerates the reaction between phenylhydrazine and ethyl cyanoacetate, leading to the formation of 2-cyano-N'-phenylacetohydrazide. This intermediate can then be easily converted into 5-amino-3-hydroxy-1-phenyl-1<i>H</i>-pyrazol. Under neutral conditions, the most favorable reaction pathway involves the attack of the terminal nitrogen of phenylhydrazine on the carbonyl group. In the case of the ethyl cyanoacetate anion, the attack also targets the carbonyl group, but occurs via the phenyl-substituted nitrogen.

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Grabovskii S. A. et al. High-Pressure Pathway in the Two-Stage Synthesis of 5-Amino-3-Hydroxy-1-Phenyl-1H-Pyrazole // Letters in Organic Chemistry. 2025. Vol. 22. No. 5. pp. 372-378.
GOST all authors (up to 50) Copy
Grabovskii S. A., Andriyashina N. M., Lobov A. N., Safiullin R. L. High-Pressure Pathway in the Two-Stage Synthesis of 5-Amino-3-Hydroxy-1-Phenyl-1H-Pyrazole // Letters in Organic Chemistry. 2025. Vol. 22. No. 5. pp. 372-378.
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TY - JOUR
DO - 10.2174/0115701786331865241120043030
UR - https://www.eurekaselect.com/238024/article
TI - High-Pressure Pathway in the Two-Stage Synthesis of 5-Amino-3-Hydroxy-1-Phenyl-1H-Pyrazole
T2 - Letters in Organic Chemistry
AU - Grabovskii, Stanislav A.
AU - Andriyashina, Nadezhda M.
AU - Lobov, Alexander Nikolaevich
AU - Safiullin, Rustam L.
PY - 2025
DA - 2025/05/01
PB - Bentham Science Publishers Ltd.
SP - 372-378
IS - 5
VL - 22
SN - 1570-1786
SN - 1875-6255
ER -
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BibTex (up to 50 authors) Copy
@article{2025_Grabovskii,
author = {Stanislav A. Grabovskii and Nadezhda M. Andriyashina and Alexander Nikolaevich Lobov and Rustam L. Safiullin},
title = {High-Pressure Pathway in the Two-Stage Synthesis of 5-Amino-3-Hydroxy-1-Phenyl-1H-Pyrazole},
journal = {Letters in Organic Chemistry},
year = {2025},
volume = {22},
publisher = {Bentham Science Publishers Ltd.},
month = {may},
url = {https://www.eurekaselect.com/238024/article},
number = {5},
pages = {372--378},
doi = {10.2174/0115701786331865241120043030}
}
MLA
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Grabovskii, Stanislav A., et al. “High-Pressure Pathway in the Two-Stage Synthesis of 5-Amino-3-Hydroxy-1-Phenyl-1H-Pyrazole.” Letters in Organic Chemistry, vol. 22, no. 5, May. 2025, pp. 372-378. https://www.eurekaselect.com/238024/article.