Sulfonium and Selenonium Salts as Noncovalent Organocatalysts for the Multicomponent Groebke-Blackburn-Bienaymé Reaction

Sulfonium and selenonium salts, represented by S-aryl dibenzothiophenium and Se-aryl dibenzoselenophenium triflates, were found to exhibit remarkable catalytic activity in the model Groebke-Blackburn-Bienaymé reaction. Kinetic analysis and density functional theory (DFT) calculations indicated that their catalytic effect is induced by the ligation of the reaction substrates to the σ-holes on the S or Se atom of the cations. The experimental data indicated that although 10-fold excess of the chloride totally inhibits the catalytic activity of the sulfonium salts, the selenonium salt remains catalytically active, which can be explained by the experimentally found lower binding constant of the selenonium derivative to chloride in comparison with the sulfonium analogue. Both types of salts exhibit lower catalytic activity in the model reaction than dibenziodolium species. © 2022 American Chemical Society.

Авторы
Il'In M.V. , Novikov A.S. , Bolotin D.S.
Номер выпуска
15
Язык
Английский
Страницы
10199-10207
Статус
Опубликовано
Том
87
Год
2022
Организации
  • 1 Institute of Chemistry, Saint Petersburg State University, Universitetskaya Nab. 7/9, Saint Petersburg, 199034, Russian Federation
  • 2 Peoples' Friendship University of Russia (RUDN University), Miklukho-Maklaya St. 6, Moscow, 117198, Russian Federation
Ключевые слова
Chlorine compounds; Density functional theory; Organocatalyst; Salts; cation; chalcogen; chloride; organic compound; polycyclic aromatic hydrocarbon derivative; selenium derivative; sulfonium derivative; trifluoromethanesulfonic acid; Binding constant; Catalytic effects; Density-functional theory calculations; Kinetic analysis; Multicomponents; Noncovalent; Organocatalysts; Reaction substrates; Sulfonium salts; Triflates; Article; arylation; association constant; catalysis; catalyst; chemical bond; chemical reaction; chemical reaction kinetics; comparative study; controlled study; density functional theory; Groebke Blackburn Bienayme reaction; Catalyst activity
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