Standard

Thermodynamic vs. Kinetic Control in Synthesis of O-Donor 2,5-Substituted Furan and 3,5-Substituted Pyrazole from Heteropropargyl Precursor. / Muravev, Anton A; Ovsyannikov, Alexander S; Konorov, Gennady V; Islamov, Daut R; Usachev, Konstantin S; Novikov, Alexander S; Solovieva, Svetlana E; Antipin, Igor S.

In: Molecules (Basel, Switzerland), Vol. 27, No. 16, 5178, 14.08.2022.

Research output: Contribution to journalArticlepeer-review

Harvard

Muravev, AA, Ovsyannikov, AS, Konorov, GV, Islamov, DR, Usachev, KS, Novikov, AS, Solovieva, SE & Antipin, IS 2022, 'Thermodynamic vs. Kinetic Control in Synthesis of O-Donor 2,5-Substituted Furan and 3,5-Substituted Pyrazole from Heteropropargyl Precursor', Molecules (Basel, Switzerland), vol. 27, no. 16, 5178. https://doi.org/10.3390/molecules27165178

APA

Muravev, A. A., Ovsyannikov, A. S., Konorov, G. V., Islamov, D. R., Usachev, K. S., Novikov, A. S., Solovieva, S. E., & Antipin, I. S. (2022). Thermodynamic vs. Kinetic Control in Synthesis of O-Donor 2,5-Substituted Furan and 3,5-Substituted Pyrazole from Heteropropargyl Precursor. Molecules (Basel, Switzerland), 27(16), [5178]. https://doi.org/10.3390/molecules27165178

Vancouver

Muravev AA, Ovsyannikov AS, Konorov GV, Islamov DR, Usachev KS, Novikov AS et al. Thermodynamic vs. Kinetic Control in Synthesis of O-Donor 2,5-Substituted Furan and 3,5-Substituted Pyrazole from Heteropropargyl Precursor. Molecules (Basel, Switzerland). 2022 Aug 14;27(16). 5178. https://doi.org/10.3390/molecules27165178

Author

Muravev, Anton A ; Ovsyannikov, Alexander S ; Konorov, Gennady V ; Islamov, Daut R ; Usachev, Konstantin S ; Novikov, Alexander S ; Solovieva, Svetlana E ; Antipin, Igor S. / Thermodynamic vs. Kinetic Control in Synthesis of O-Donor 2,5-Substituted Furan and 3,5-Substituted Pyrazole from Heteropropargyl Precursor. In: Molecules (Basel, Switzerland). 2022 ; Vol. 27, No. 16.

BibTeX

@article{bbf20f6c1d8046da94a0df44d1a92f7d,
title = "Thermodynamic vs. Kinetic Control in Synthesis of O-Donor 2,5-Substituted Furan and 3,5-Substituted Pyrazole from Heteropropargyl Precursor",
abstract = "Elaboration of a convenient route towards donor-substituted pyrazoles from heteropropargyl precursors is challenging due to a number of thermodynamically favorable side reactions (e.g., acetylene-allene isomerization and Glaser homocoupling). In this work, Sonogashira cross-coupling conditions of 4-tert-butylphenyl propargyl ether with benzoyl chloride followed by tandem Michael addition/cyclocondensation with hydrazine into 3,5-disubstituted pyrazole (kinetic control), as well as cycloisomerization conditions of ketoacetylene intermediate into 2,5-disubstituted furan (thermodynamic control), were established through a variation of the catalyst loading, solvent polarity, excess of triethylamine, and time of reaction. During the optimization of process parameters, a number of by-products represented by a monophosphine binuclear complex (PPh3PdI2)2 with two bridging iodine atoms and diyne were identified and isolated in the pure form. The quantum-chemical calculations and solution-state 1H/13C NMR spectroscopy suggested that the 5(3)-(4-tert-butylphenyloxy)methoxy-3(5)-phenyl-1H-pyrazole exists in the tautomeric equilibrium in a polar methanol solvent and that individual tautomers could be characterized in case aprotic solvents employed. The pyrazole features a unique tetramer motif in the crystal phase formed by alternating 3(5)-phenyl-1H-pyrazole tautomers, which was stabilized by N-H···N bonds and stacking interactions of pyrazole rings, whereas pyrazole dimers were identified in the gas phase.",
keywords = "Furans, Pyrazoles/chemistry, Solvents, Thermodynamics",
author = "Muravev, {Anton A} and Ovsyannikov, {Alexander S} and Konorov, {Gennady V} and Islamov, {Daut R} and Usachev, {Konstantin S} and Novikov, {Alexander S} and Solovieva, {Svetlana E} and Antipin, {Igor S}",
note = "Muravev, A.A.; Ovsyannikov, A.S.; Konorov, G.V.; Islamov, D.R.; Usachev, K.S.; Novikov, A.S.; Solovieva, S.E.; Antipin, I.S. Thermodynamic vs. Kinetic Control in Synthesis of O-Donor 2,5-Substituted Furan and 3,5-Substituted Pyrazole from Heteropropargyl Precursor. Molecules 2022, 27, 5178. https://doi.org/10.3390/molecules27165178",
year = "2022",
month = aug,
day = "14",
doi = "10.3390/molecules27165178",
language = "English",
volume = "27",
journal = "Molecules",
issn = "1420-3049",
publisher = "MDPI AG",
number = "16",

}

RIS

TY - JOUR

T1 - Thermodynamic vs. Kinetic Control in Synthesis of O-Donor 2,5-Substituted Furan and 3,5-Substituted Pyrazole from Heteropropargyl Precursor

AU - Muravev, Anton A

AU - Ovsyannikov, Alexander S

AU - Konorov, Gennady V

AU - Islamov, Daut R

AU - Usachev, Konstantin S

AU - Novikov, Alexander S

AU - Solovieva, Svetlana E

AU - Antipin, Igor S

N1 - Muravev, A.A.; Ovsyannikov, A.S.; Konorov, G.V.; Islamov, D.R.; Usachev, K.S.; Novikov, A.S.; Solovieva, S.E.; Antipin, I.S. Thermodynamic vs. Kinetic Control in Synthesis of O-Donor 2,5-Substituted Furan and 3,5-Substituted Pyrazole from Heteropropargyl Precursor. Molecules 2022, 27, 5178. https://doi.org/10.3390/molecules27165178

PY - 2022/8/14

Y1 - 2022/8/14

N2 - Elaboration of a convenient route towards donor-substituted pyrazoles from heteropropargyl precursors is challenging due to a number of thermodynamically favorable side reactions (e.g., acetylene-allene isomerization and Glaser homocoupling). In this work, Sonogashira cross-coupling conditions of 4-tert-butylphenyl propargyl ether with benzoyl chloride followed by tandem Michael addition/cyclocondensation with hydrazine into 3,5-disubstituted pyrazole (kinetic control), as well as cycloisomerization conditions of ketoacetylene intermediate into 2,5-disubstituted furan (thermodynamic control), were established through a variation of the catalyst loading, solvent polarity, excess of triethylamine, and time of reaction. During the optimization of process parameters, a number of by-products represented by a monophosphine binuclear complex (PPh3PdI2)2 with two bridging iodine atoms and diyne were identified and isolated in the pure form. The quantum-chemical calculations and solution-state 1H/13C NMR spectroscopy suggested that the 5(3)-(4-tert-butylphenyloxy)methoxy-3(5)-phenyl-1H-pyrazole exists in the tautomeric equilibrium in a polar methanol solvent and that individual tautomers could be characterized in case aprotic solvents employed. The pyrazole features a unique tetramer motif in the crystal phase formed by alternating 3(5)-phenyl-1H-pyrazole tautomers, which was stabilized by N-H···N bonds and stacking interactions of pyrazole rings, whereas pyrazole dimers were identified in the gas phase.

AB - Elaboration of a convenient route towards donor-substituted pyrazoles from heteropropargyl precursors is challenging due to a number of thermodynamically favorable side reactions (e.g., acetylene-allene isomerization and Glaser homocoupling). In this work, Sonogashira cross-coupling conditions of 4-tert-butylphenyl propargyl ether with benzoyl chloride followed by tandem Michael addition/cyclocondensation with hydrazine into 3,5-disubstituted pyrazole (kinetic control), as well as cycloisomerization conditions of ketoacetylene intermediate into 2,5-disubstituted furan (thermodynamic control), were established through a variation of the catalyst loading, solvent polarity, excess of triethylamine, and time of reaction. During the optimization of process parameters, a number of by-products represented by a monophosphine binuclear complex (PPh3PdI2)2 with two bridging iodine atoms and diyne were identified and isolated in the pure form. The quantum-chemical calculations and solution-state 1H/13C NMR spectroscopy suggested that the 5(3)-(4-tert-butylphenyloxy)methoxy-3(5)-phenyl-1H-pyrazole exists in the tautomeric equilibrium in a polar methanol solvent and that individual tautomers could be characterized in case aprotic solvents employed. The pyrazole features a unique tetramer motif in the crystal phase formed by alternating 3(5)-phenyl-1H-pyrazole tautomers, which was stabilized by N-H···N bonds and stacking interactions of pyrazole rings, whereas pyrazole dimers were identified in the gas phase.

KW - Furans

KW - Pyrazoles/chemistry

KW - Solvents

KW - Thermodynamics

U2 - 10.3390/molecules27165178

DO - 10.3390/molecules27165178

M3 - Article

C2 - 36014420

VL - 27

JO - Molecules

JF - Molecules

SN - 1420-3049

IS - 16

M1 - 5178

ER -

ID: 103128803