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Search for "sulfate radical anion" in Full Text gives 8 result(s) in Beilstein Journal of Organic Chemistry.

Pyridine C(sp2)–H bond functionalization under transition-metal and rare earth metal catalysis

  • Haritha Sindhe,
  • Malladi Mounika Reddy,
  • Karthikeyan Rajkumar,
  • Akshay Kamble,
  • Amardeep Singh,
  • Anand Kumar and
  • Satyasheel Sharma

Beilstein J. Org. Chem. 2023, 19, 820–863, doi:10.3762/bjoc.19.62

Graphical Abstract
  • toluene 117 by sulfate radical anion. Coordination of intermediate 120 and 121 leads to complex 122 which undergoes reductive elimination to provide product 119. 2-Ethyl-substituted pyridine N-oxides may undergo a dual C–H activation due to the buttressing effect of the ethyl group to produce azafluorene
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Published 12 Jun 2023

Sulfate radical anion-induced benzylic oxidation of N-(arylsulfonyl)benzylamines to N-arylsulfonylimines

  • Joydev K. Laha,
  • Pankaj Gupta and
  • Amitava Hazra

Beilstein J. Org. Chem. 2023, 19, 771–777, doi:10.3762/bjoc.19.57

Graphical Abstract
  • -aryl(benzyl)amines to N-arylimines using K2S2O8 is reported to be problematic, the oxidation of N-(arylsulfonyl)benzylamines to N-arylsulfonylimines using K2S2O8 has been achieved for the first time. The dual role of the sulfate radical anion (SO4·−), including hydrogen atom abstraction (HAT) and
  • single electron transfer (SET), is proposed to be involved in the plausible reaction mechanism. Keywords: arylsulfonylimine; benzylic oxidation; benzyl sulfonamide; K2S2O8; sulfate radical anion; Introduction Among various imine compounds [1], N-arylsulfonylimines are perhaps the most prominent due to
  • abstraction (HAT) followed by single electron transfer (SET) enabled by the sulfate radical anion (SO4·−). Results and Discussion Initially, we investigated the reaction of N-benzenesulfonyl(benzyl)amine (1a) as a model substrate with K2S2O8 in MeCN at 80 °C for 12 h, conditions that were used earlier in our
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Published 05 Jun 2023

Metal-free synthesis of phosphinoylchroman-4-ones via a radical phosphinoylation–cyclization cascade mediated by K2S2O8

  • Qiang Liu,
  • Weibang Lu,
  • Guanqun Xie and
  • Xiaoxia Wang

Beilstein J. Org. Chem. 2020, 16, 1974–1982, doi:10.3762/bjoc.16.164

Graphical Abstract
  • bond of 1 to generate a new carbon-centered radical II, with sequential attack on the aldehyde group. The oxygen radical III thus formed undergoes a formal 1,2-H shift to generate the benzyl radical IV [45][46]. Finally, hydrogen abstraction by the sulfate radical anion (SO4•−) from the benzyl radical
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Letter
Published 12 Aug 2020

Recent developments in photoredox-catalyzed remote ortho and para C–H bond functionalizations

  • Rafia Siddiqui and
  • Rashid Ali

Beilstein J. Org. Chem. 2020, 16, 248–280, doi:10.3762/bjoc.16.26

Graphical Abstract
  • oxidation via HAT or SET/deprotonation, generates the desired product 97 (Figure 15). The oxidation of the persulfate anion generates a sulfate radical anion, which acts as an oxidant in the aromatization step. In the absence of light and photoredox catalyst, no product was obtained. C–H phosphonylation
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Published 26 Feb 2020

Oxidative radical ring-opening/cyclization of cyclopropane derivatives

  • Yu Liu,
  • Qiao-Lin Wang,
  • Zan Chen,
  • Cong-Shan Zhou,
  • Bi-Quan Xiong,
  • Pan-Liang Zhang,
  • Chang-An Yang and
  • Quan Zhou

Beilstein J. Org. Chem. 2019, 15, 256–278, doi:10.3762/bjoc.15.23

Graphical Abstract
  • outlined in Scheme 21. Firstly, the sulfate radical anion 97 is generated from persulfate 96 under the action of Ag(I). Next, the radical 97 reacts with cyclopropanol 91 to give the cyclopropoxy radical 98, which undergoes a ring-opening process to produce β-keto radical 99. The radical 100 is formed
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Published 28 Jan 2019

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

Graphical Abstract
  • photocatalyst and complete the catalytic cycle forming the sulfate dianion 5 and sulfate radical anion 6. The phenyl sulfide radical 2 formed upon homolytic cleavage of diphenyl disulfide adds to the radical cation of the arene to form the unstable cationic intermediate 3. Aromatization by deprotonation leads
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Published 27 Sep 2018

CF3SO2X (X = Na, Cl) as reagents for trifluoromethylation, trifluoromethylsulfenyl-, -sulfinyl- and -sulfonylation. Part 1: Use of CF3SO2Na

  • Hélène Guyon,
  • Hélène Chachignon and
  • Dominique Cahard

Beilstein J. Org. Chem. 2017, 13, 2764–2799, doi:10.3762/bjoc.13.272

Graphical Abstract
  • oxidised to Ag(II) by the persulfate anion; then, CF3SO2– was oxidised to CF3SO2• that generated CF3• by release of SO2. Addition of the CF3 radical to the alkene led to the radical intermediate 50, which underwent intramolecular cyclisation into 51. The sulfate radical anion then oxidised intermediate 51
  • generate the Ag(II) cation and the sulfate radical anion; then, the Ag(II) oxidised CF3SO2Na into CF3• with extrusion of SO2. The CF3 radical reacted with the C=C double bond of the cinnamamide leading to the intermediate 55 that underwent 6-endo trig cyclisation to 56 that finally aromatised to the
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Published 19 Dec 2017

The chemistry of amine radical cations produced by visible light photoredox catalysis

  • Jie Hu,
  • Jiang Wang,
  • Theresa H. Nguyen and
  • Nan Zheng

Beilstein J. Org. Chem. 2013, 9, 1977–2001, doi:10.3762/bjoc.9.234

Graphical Abstract
  • strongly reducing α-amino radical 68a that is oxidizable by the photoexcited state of Ru(II) or Ir(III). The α-amino radical 68a is formed via C–H abstraction by the sulfate radical anion (SO4−·), which is generated by exposure of Ru2+* to persulfate (S2O82−), an oxidative quencher. Electron-rich arenes
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Published 01 Oct 2013
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