Catalyst-controlled approaches for the synthesis of S-stereogenic compounds have propelled significant advancements in asymmetric synthetic chemistry. In contrast, control over S-heteroatom (e.g. O) bond formation to access sulfinimidate esters remains an underexplored area. Drawing inspiration from recent progress in electrophilic amide activation, herein, we present a sulfinamide activation strategy for the enantioselective synthesis of S-chiral sulfinimidate esters. This method involves the activation of racemic sulfinamides by sulfonyl chloride, yielding a reactive aza-sulfinyl mixed anhydride intermediate. Employing a naturally occurring cinchonidine catalyst, the process achieves excellent enantiocontrol in the subsequent formation of S-O bonds with alcohols involving a dynamic kinetic resolution (DKR) process, resulting in sulfinimidate esters with excellent enantioselectivity. The catalytically obtained enantioenriched sulfinimidate esters offer a versatile platform for the construction of S-stereogenic frameworks, including sulfilimines and sulfoximines, with promising applications in asymmetric synthesis and drug discovery.
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http://dx.doi.org/10.1002/anie.202500170 | DOI Listing |
Angew Chem Int Ed Engl
March 2025
Guizhou University, National Key Laboratory of Green Pesticide, 2708 South Huaxi Road, 550025, Guiyang, CHINA.
Catalyst-controlled approaches for the synthesis of S-stereogenic compounds have propelled significant advancements in asymmetric synthetic chemistry. In contrast, control over S-heteroatom (e.g.
View Article and Find Full Text PDFOrg Biomol Chem
March 2025
School of College of Chemistry & Materials Science, Northwest University, 1 Xue Fu Avenue, Chang'an Zone, Xi'an 710127, China.
In this work, we present an innovative Brønsted acid-catalyzed approach for the concurrent preparation of sulfinamidines and sulfinimidate esters from sulfenamides under one set of mild and metal-free conditions, employing electrophilic fluorination followed by nucleophilic substitution, achieving high yields of up to 97% after 12 hours at room temperature. This reaction method is enabled by CSA as the Brønsted acid catalyst, Selectfluor as the electrophilic fluorinating reagent, and readily available amines and alcohols as nucleophiles. The proposed mechanism involves initial fluorination of the sulfur atom, followed by nucleophilic attack.
View Article and Find Full Text PDFOrg Biomol Chem
October 2023
FLAME-Lab, Flow Chemistry and Microreactor Technology Laboratory Department of Pharmacy-Drug Sciences University of Bari "A. Moro" Via E., Orabona 4-70125 Bari, Italy.
Significant advancements have been made in the synthesis of overlooked aza-S(IV) motifs. The accessibility of sulfinamidines and sulfinimidate esters has greatly improved through the recent development of efficient and complementary synthetic strategies. Intriguingly, new discoveries have emerged regarding the reactivity of these substances, highlighting the electrophilic nature of sulfinimidate esters and the nucleophilic character of sulfinamidines.
View Article and Find Full Text PDFOrg Lett
March 2023
School of Chemistry and Chemical Engineering, Laboratory of Marine Green Fine Chemicals, Lingnan Normal University (LNU), 29 Cunjin Road, Zhanjiang, Guangdong 524048, People's Republic of China.
In this study, we present a novel and efficient approach for the oxidative esterification of sulfenamides using phenyliodonium diacetate, enabling the synthesis of sulfinimidate esters and sulfilimines under mild and metal-free conditions, with yields reaching up to 99%. The protocol is readily scalable and compatible with a diverse range of substrates and functional groups, and we demonstrate its potential for late-stage functionalization of pharmacologically relevant molecules. Furthermore, we propose a plausible reaction mechanism to account for the observed sequence of events.
View Article and Find Full Text PDFJACS Au
February 2023
Department of Chemistry, Johannes Gutenberg University Mainz, Duesbergweg 10-14, 55128 Mainz, Germany.
Herein, we describe an electrochemical pathway for the synthesis of sulfilimines, sulfoximines, sulfinamidines, and sulfinimidate esters from readily available low-valent sulfur compounds and primary amides or their analogues. The combination of solvents and supporting electrolytes together act both as an electrolyte as well as a mediator, leading to efficient use of reactants. Both can be easily recovered, enabling an atom-efficient and sustainable process.
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