| Literature DB >> 34164018 |
Weigang Zhang1, Mengjun Huang1, Zhenlei Zou1, Zhengguang Wu1, Shengyang Ni1, Lingyu Kong1, Youxuan Zheng1, Yi Wang1, Yi Pan1.
Abstract
Redox-active benzimidazolium sulfonamides as thiolating reagents have been developed for reductive C-S bond coupling. The IMDN-SO2R reagent provides a bench-stable cationic precursor to generate a portfolio of highly active N-S intermediates, which can be successfully applied in cross-electrophilic coupling with various organic halides. The employment of an electrophilic sulfur source solved the problem of catalyst deactivation and avoided odorous thiols, featuring practical conditions, broad substrate scope, and excellent tolerance. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 34164018 PMCID: PMC8179258 DOI: 10.1039/d0sc06446g
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Origin of the reaction design. (a) C–S formation from organic halides. (b) The preparation of the electrophilic thiolating reagent (R–S+). (c) This work: cationic active reagent for cross electrophilic coupling.
Optimization of the reaction conditions. Reaction condition: 2a (0.20 mmol), 1a (0.40 mmol, 2.0 equiv.), MgCl2 (2.0 equiv.), PPh3 (2.5 equiv.), Zn (3.0 equiv.), Ni(OTf)2 (20 mol%) and dtbbpy (20 mol%) in DMA (2 mL) at 60 °C under Ar. Crude yields determined by 1H NMR spectroscopy using dibromomethane as an internal standard. Isolated yield. dtbbpy = 4,4′-di-tert-butyl-2,2′-bipyridine. TDAE = tetrakis(dimethylamino)ethylene
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| Entry | Variation | Yield | Entry | Variation | Yield |
| 1 | None | 96 (92) | 8 | 10 mol% [Ni] | 83 |
| 2 | Ni(acac)2 | 42 | 9 | No Ni(OTf)2 | nd |
| 3 | Ni(cod)2 | 63 | 10 | No Zn | nd |
| 4 | Ni(OAc)2·4H2O | 21 | 11 | TDAE for Zn | 21 |
| 5 | Ni(PCy3)2Cl2 | 57 | 12 | No dtbbpy | 46 |
| 6 | 1.5 equiv. 1a | 75 | 13 | No MgCl2 | 39 |
| 7 | 2.0 equiv. 1b | 88 | 14 | No PPh3 | 20 |
Scheme 2Substrate scope of (hetero)aryl and benzimidazolium sulfonamides. aReaction was performed at 80 °C.
Scheme 3Substrate scope of alkyl, alkenyl and alkynyl bromide. aNi(PCy3)2Cl2 instead of Ni(OTf)2 and without dtbbpy. b4-(Trifluoromethyl)pyridine (0.2 mmol) and THF (2 mL) were used instead of dtbbpy and DMA.
Scheme 4Further transformations. (a) Gram-scale experiment. (b) Late-stage modification of natural products. (c) The synthesis of vortioxetine using our protocol.
Scheme 5Mechanistic studies and proposed mechanism.