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Search for "sulfenylation" in Full Text gives 12 result(s) in Beilstein Journal of Organic Chemistry.

N-Sulfenylsuccinimide/phthalimide: an alternative sulfenylating reagent in organic transformations

  • Fatemeh Doraghi,
  • Seyedeh Pegah Aledavoud,
  • Mehdi Ghanbarlou,
  • Bagher Larijani and
  • Mohammad Mahdavi

Beilstein J. Org. Chem. 2023, 19, 1471–1502, doi:10.3762/bjoc.19.106

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  • article, we focus on the application of these alternative sulfenylating reagents in organic transformations. Keywords: electrophile; N-(sulfenyl)succinimides/phthalimides; organic transformations; organosulfur; sulfenylation; Introduction Sulfur-containing compounds are of high importance in organic
  • pharmaceutical molecules. Considering the synthetic applications of sulfur-based compounds, a large number of researchers have noted that these scaffolds have promising potential for the research and development of new biomedicines. In the sulfenylation of organic compounds, the sulfenylating agents are
  • functional materials and indispensable synthetic intermediates in drug discovery [31][32][33]. Because of their value, constructing C–S bonds has attracted significant attention via metal-catalyzed cross-coupling reactions and metal-free C–S bond formation [34][35][36][37]. Direct sulfenylation of the C–H
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Published 27 Sep 2023

Recent advances in the tandem annulation of 1,3-enynes to functionalized pyridine and pyrrole derivatives

  • Yi Liu,
  • Puying Luo,
  • Yang Fu,
  • Tianxin Hao,
  • Xuan Liu,
  • Qiuping Ding and
  • Yiyuan Peng

Beilstein J. Org. Chem. 2021, 17, 2462–2476, doi:10.3762/bjoc.17.163

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  • structural motifs to provide the functionalized pyridine and pyrrole derivatives. The functionalization reactions cover iodination, bromination, trifluoromethylation, azidation, carbonylation, arylation, alkylation, selenylation, sulfenylation, amidation, esterification, and hydroxylation. We also briefly
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Published 22 Sep 2021

A recent overview on the synthesis of 1,4,5-trisubstituted 1,2,3-triazoles

  • Pezhman Shiri,
  • Ali Mohammad Amani and
  • Thomas Mayer-Gall

Beilstein J. Org. Chem. 2021, 17, 1600–1628, doi:10.3762/bjoc.17.114

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  • . Finally, a reductive elimination takes place to give the corresponding final product and the catalyst for the next run [51]. A tandem Click/intramolecular sulfenylation procedure for the synthesis of sulfur-cycle-fused 1,2,3-triazoles 75 and 77 was described by Xu et al. The reaction was performed through
  • a [3 + 2]-cycloaddition between alkynes 73 and 76 and alkylthiotosyl azides 74 using MeOLi in the presence of a copper(I) catalyst in dioxane at room temperature. This Click/intramolecular sulfenylation reaction displayed an extensive scope, complete regioselectivity, and good to high yield of
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Published 13 Jul 2021

A comprehensive review of flow chemistry techniques tailored to the flavours and fragrances industries

  • Guido Gambacorta,
  • James S. Sharley and
  • Ian R. Baxendale

Beilstein J. Org. Chem. 2021, 17, 1181–1312, doi:10.3762/bjoc.17.90

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Published 18 May 2021

Selective synthesis of α-organylthio esters and α-organylthio ketones from β-keto esters and sodium S-organyl sulfurothioates under basic conditions

  • Jean C. Kazmierczak,
  • Roberta Cargnelutti,
  • Thiago Barcellos,
  • Claudio C. Silveira and
  • Ricardo F. Schumacher

Beilstein J. Org. Chem. 2021, 17, 234–244, doi:10.3762/bjoc.17.24

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  • rediscovered by many researchers as stable, nonhygroscopic, and moisture-resistant thiolating agents. Therefore, they have been actively studied as precursors for the preparation of diverse sulfur-containing compounds [1]. These recent findings include their use in direct sulfenylation reactions of electron
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Published 26 Jan 2021

Synthesis of aryl sulfides via radical–radical cross coupling of electron-rich arenes using visible light photoredox catalysis

  • Amrita Das,
  • Mitasree Maity,
  • Simon Malcherek,
  • Burkhard König and
  • Julia Rehbein

Beilstein J. Org. Chem. 2018, 14, 2520–2528, doi:10.3762/bjoc.14.228

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  • /arylzinc reagents [35][36]. However, most of these methods require harsh reaction conditions, external additives and high temperatures. The reactions need prefunctionalized arenes, while a direct C–S sulfenylation by C–H functionalization would be more desirable and cost effective. So far, only a few
  • -Trimethoxybenzene and diphenyl disulfide were employed as the model substrates to test our proposal and to optimize the reaction conditions. Our developed photocatalytic method allows the activation of electron-rich alkoxyarenes for the direct C–H sulfenylation reaction using visible light and [Ir(dF(CF3)ppy)2
  • sulfenylation occurred exclusively at the double bond instead at the arene to give the product 3k in 58% yield and a trace amount of diarylation product of the aromatic ring. When the more difficult to oxidize 2-methoxynaphthalene was used as substrate, the product 3l was obtained in only 30% yield indicating
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Published 27 Sep 2018

Photocatalytic formation of carbon–sulfur bonds

  • Alexander Wimmer and
  • Burkhard König

Beilstein J. Org. Chem. 2018, 14, 54–83, doi:10.3762/bjoc.14.4

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  • and aromatic thiols react under these conditions with aliphatic alkenes and styrenes. The direct C-3 sulfenylation of indoles with aryl thiols was reported by Guo, Chen and Fan, using Rose Bengal as organic photoredox catalyst and aerobic oxygen as oxidative species (Scheme 14) [44]. They propose that
  • the corresponding sulfides. Very recently, the same group reported of a controllable sulfenylation and sulfoxidation procedure starting from alkyl and aryl thiosulfates and diaryliodonium salts under visible-light catalysis with Eosin Y (Scheme 40) [75]. They observed that the reaction yields the
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Published 05 Jan 2018

Transition-metal-free synthesis of 3-sulfenylated chromones via KIO3-catalyzed radical C(sp2)–H sulfenylation

  • Yanhui Guo,
  • Shanshan Zhong,
  • Li Wei and
  • Jie-Ping Wan

Beilstein J. Org. Chem. 2017, 13, 2017–2022, doi:10.3762/bjoc.13.199

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  • chromones via domino chromone ring construction and C(sp2)–H bond sulfenylation have been achieved under transition-metal-free conditions by using KIO3 as the only catalyst. Keywords: C–H sulfenylation; chromones; domino reaction; free-radical; transition-metal-free; Introduction The C–S bond-forming
  • readily synthesized with several different transition-metal-free C–H cross-coupling approaches. Zhou and co-workers reported the NH4I-promoted synthesis of 3-sulfenylated chromones via the direct chromone C–H sulfenylation by using different sulfur sources (A, Scheme 1) [38][39]. Recently, our continuous
  • efforts in exploring enaminone C(sp2)–H bond sulfenylation [40][41] reactions have led us to establish the synthesis of 3-sulfenylated chromones via KIO3-catalyzed tandem reactions of o-hydroxylphenylenaminone and thiophenols via tandem C–H sulfenylation and intramolecular C–N bond oxygenation (B, Scheme
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Published 27 Sep 2017

Chiral phase-transfer catalysis in the asymmetric α-heterofunctionalization of prochiral nucleophiles

  • Johannes Schörgenhumer,
  • Maximilian Tiffner and
  • Mario Waser

Beilstein J. Org. Chem. 2017, 13, 1753–1769, doi:10.3762/bjoc.13.170

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  • phase-transfer catalysis for α-sulfenylation reactions date back almost 20 years, when Wladislaw and co-workers described the diastereoselective α-sulfenylation of chiral β-ketosulfoxides 29 in the presence of achiral and chiral PTCs (Scheme 14, upper reaction) [127][128][129]. In a detailed
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Published 22 Aug 2017

1H-Imidazol-4(5H)-ones and thiazol-4(5H)-ones as emerging pronucleophiles in asymmetric catalysis

  • Antonia Mielgo and
  • Claudio Palomo

Beilstein J. Org. Chem. 2016, 12, 918–936, doi:10.3762/bjoc.12.90

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  • -additions to allenic ketones and esters [35][36], 1,6-additions to conjugated dienones [37], aldol/Mannich reactions [26][38][39][40], α-sulfenylation reactions [41] and alkylations [42][43]. More recently the nitrogen (1H-imidazol-4(5H)-ones, Figure 1b, X = NR’) and sulfur (thiazol-4(5H)-ones, Figure 1b, X
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Published 09 May 2016

Alkene selenenylation: A comprehensive analysis of relative reactivities, stereochemistry and asymmetric induction, and their comparisons with sulfenylation

  • Vadim A. Soloshonok and
  • Donna J. Nelson

Beilstein J. Org. Chem. 2011, 7, 744–758, doi:10.3762/bjoc.7.85

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  • , and comparison with that of alkene sulfenylation. Alkyl group branching α to the double bond was shown to have the greatest effect on alkene reactivity and the stereochemical outcome of corresponding addition reactions. This is in sharp contrast with other additions to alkenes, which depend more on
  • progress [2][3] in both synthetic and theoretical investigations of electrophilic selenenylation, it still remains one of the least studied types of electrophilic addition to alkenes, in particular when compared with sulfenylation. On the other hand, electrophilic selenenylation provides for the most
  • , we apply these established relationships for a detailed analysis of the steric and electronic effects in the addition of PhSeCl to a series of representative alkenes and compare these findings with the corresponding data reported for the analogous sulfenylation reactions. Of particular interest and
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Published 03 Jun 2011

Enantiospecific synthesis of [2.2]paracyclophane- 4-thiol and derivatives

  • Gareth J. Rowlands and
  • Richard J. Seacome

Beilstein J. Org. Chem. 2009, 5, No. 9, doi:10.3762/bjoc.5.9

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  • ]paracyclophane compounds; aryl sulfonylation and the related sulfenylation facilitates the synthesis of sulfonic acids, sulfonamides and protected thiols [24][25][26] whilst directed metallation has allowed the formation of various sulfides [27][28][29][30]. Very few methodologies allow the synthesis of simple
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Published 12 Mar 2009
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