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Search for "anodic oxidation" in Full Text gives 43 result(s) in Beilstein Journal of Organic Chemistry.

Mechanisms for radical reactions initiating from N-hydroxyphthalimide esters

  • Carlos R. Azpilcueta-Nicolas and
  • Jean-Philip Lumb

Beilstein J. Org. Chem. 2024, 20, 346–378, doi:10.3762/bjoc.20.35

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  • radical intermediate 164. In the other redox half-reaction, Hantzsch ester (HE) undergoes anodic oxidation to form radical cation 65, which then transfers a proton, likely to the phthalimidyl anion (–Nphth), resulting in the formation of radical species 165. Finally, reaction between intermediates 164 and
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Published 21 Feb 2024

Additive-controlled chemoselective inter-/intramolecular hydroamination via electrochemical PCET process

  • Kazuhiro Okamoto,
  • Naoki Shida and
  • Mahito Atobe

Beilstein J. Org. Chem. 2024, 20, 264–271, doi:10.3762/bjoc.20.27

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  • radical acceptor moieties. Therefore, we investigated the origin of this selectivity under electrochemical conditions. Results and Discussion Anodic oxidation of uridine derivative 1 was performed in a CH2Cl2/Bu4NPF6 (0.1 M) electrolyte system using a carbon felt (CF) anode and a Pt cathode in the
  • mechanism for the inter- and intramolecular hydroamination of 1 (Figure 4). In the N-alkylation reaction, anodic oxidation of a small hydrogen-bonded complex produces amidyl radical A. The hydrophobic MVK molecule was excluded from the highly polar environment of this complex, but the resulting amidyl
  • electrochemical conditions. Experimental General procedure of anodic oxidation Compound 1 (145 mg, 0.2 mmol), Bu4NPF6 (387 mg, 1 mmol), CH2Cl2 (10 mL), phosphate base (90 mg, 0.2 mmol) and methyl vinyl ketone (32.7 μL, 0.4 mmol) were added to a test tube, which was then subjected to a constant electrical current
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Published 12 Feb 2024

1-Butyl-3-methylimidazolium tetrafluoroborate as suitable solvent for BF3: the case of alkyne hydration. Chemistry vs electrochemistry

  • Marta David,
  • Elisa Galli,
  • Richard C. D. Brown,
  • Marta Feroci,
  • Fabrizio Vetica and
  • Martina Bortolami

Beilstein J. Org. Chem. 2023, 19, 1966–1981, doi:10.3762/bjoc.19.147

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  • -heterocyclic carbenes (NHCs), extensively studied as organocatalysts as well as ligands for transition-metal-promoted synthetic methodologies [97][98][99]. Under anodic oxidation, the electrogeneration of boron trifluoride (BF3) from tetrafluoroborate ILs occurs [100][101]. Moreover, we have recently
  • the 19F NMR analysis of BMIm-BF4 after anodic oxidation in a divided cell, which shows a peak at −147.3 ppm (besides the peak at −150.6 due to BF4−) (see Supporting Information File 1, Figure S1e), which is replaced by a peak at −144.0 ppm (referred to −150.6 ppm for BF4−) when the electrolysis is
  • was set at −150.6 ppm in 19F NMR spectrum [112]. We thus carried out the anodic oxidation of pure BMIm-BF4 (divided cell, galvanostatic conditions) and stopped the electrolysis after 60 C (corresponding to 0.6 mmol of electrons). At the end of the electrolysis, 0.6 mmol of DIPEA were added to the
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Published 28 Dec 2023

Photoredox catalysis harvesting multiple photon or electrochemical energies

  • Mattia Lepori,
  • Simon Schmid and
  • Joshua P. Barham

Beilstein J. Org. Chem. 2023, 19, 1055–1145, doi:10.3762/bjoc.19.81

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  • doublet states which are photoexcited to yield super-oxidants or super-reductants while recycling e-PRC involves the turnover of a ‘standard’ (typically closed-shell) photoredox catalyst (PC) by means of anodic oxidation or cathodic reduction [28][29]. Furthermore, a series of new protocols using
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Published 28 Jul 2023

Combretastatins D series and analogues: from isolation, synthetic challenges and biological activities

  • Jorge de Lima Neto and
  • Paulo Henrique Menezes

Beilstein J. Org. Chem. 2023, 19, 399–427, doi:10.3762/bjoc.19.31

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  • , employing a 10-step synthetic route with an overall yield of 9%. Nishiyama employed electrochemical techniques as a starting point to achieve the total synthesis of combretastatin D-4 (4) [54]. Different anodic oxidation conditions and phenolic substrates were tested aiming at the formation of a diaryl
  • ether moiety. The best result was obtained when phenol 101 was subjected to anodic oxidation, leading to the formation of spiro-dimer 102 in 61% yield. Protection of the alcohol using TBSOTf followed by cyclic ether cleavage and re-aromatization gave compound 104. Subsequent dehalogenation followed by
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Published 29 Mar 2023

Two-step continuous-flow synthesis of 6-membered cyclic iodonium salts via anodic oxidation

  • Julian Spils,
  • Thomas Wirth and
  • Boris J. Nachtsheim

Beilstein J. Org. Chem. 2023, 19, 27–32, doi:10.3762/bjoc.19.2

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  • otherwise tedious to synthesize CDIS robustly in short reaction times. A significant drawback still is the use of stoichiometric amounts of chemical oxidants, which decreases the atom economy and necessitates additional workup procedures. A possible solution is the anodic oxidation of iodoarenes as
  • anodic oxidation [37][38][39][40]. Due to the apparent advantages of electrochemical processes, their implementation in flow is simple and straightforward since further dilution or additives are unnecessary [41][42]. One early example of this combination in the field of HVI chemistry is the anodic
  • oxidation of iodoarenes to form DIS by Wirth et al. (Scheme 1B) [39]. Herein, established conditions for synthesizing DIS were transferred into flow chemistry utilizing a model flow reactor with two platinum electrodes. Other recent examples include the generation of five-membered CDIS utilizing fluorinated
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Published 03 Jan 2023

Redox-active molecules as organocatalysts for selective oxidative transformations – an unperceived organocatalysis field

  • Elena R. Lopat’eva,
  • Igor B. Krylov,
  • Dmitry A. Lapshin and
  • Alexander O. Terent’ev

Beilstein J. Org. Chem. 2022, 18, 1672–1695, doi:10.3762/bjoc.18.179

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  • [74][76][80][86][87][88]. To facilitate the anodic oxidation of N-hydroxyphthalimide, basic pyridine derivatives are used as the N-hydroxyphthalimide proton acceptors [87]. In many cases electrolysis can be performed in the galvanostatic mode in a simple undivided cell, which is convenient for
  • multigram-scale syntheses [86]. The selective allylic [86] and benzylic [80] CH-oxidation to the corresponding carbonyl compounds was achieved. Compared to the direct anodic oxidation of organic substrates, the N-oxyl-mediated indirect electrolysis proceeds at lower potentials, demonstrates wider
  • intermediate is depicted in Scheme 28). Quinone derivatives could also be generated in situ by anodic oxidation of phenolic compounds. An example of such process is the electrocatalytic biomimetic synthesis of secondary amines by o-azaquinone catalysis [130] (Scheme 29). Under anodic oxidation conditions imine
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Published 09 Dec 2022

A one-pot electrochemical synthesis of 2-aminothiazoles from active methylene ketones and thioureas mediated by NH4I

  • Shang-Feng Yang,
  • Pei Li,
  • Zi-Lin Fang,
  • Sen Liang,
  • Hong-Yu Tian,
  • Bao-Guo Sun,
  • Kun Xu and
  • Cheng-Chu Zeng

Beilstein J. Org. Chem. 2022, 18, 1249–1255, doi:10.3762/bjoc.18.130

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  • produce α-iodo ketone with the molecular I2 produced by anodic oxidation. Subsequently, the nucleophilic substitution between intermediate 4 and thiourea tautomer gives α-sulfur substituted ketone 5. Intermediate 5 undergoes intramolecular nucleophilic addition to the carbonyl group and followed by
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Published 15 Sep 2022

Electro-conversion of cumene into acetophenone using boron-doped diamond electrodes

  • Mana Kitano,
  • Tsuyoshi Saitoh,
  • Shigeru Nishiyama,
  • Yasuaki Einaga and
  • Takashi Yamamoto

Beilstein J. Org. Chem. 2022, 18, 1154–1158, doi:10.3762/bjoc.18.119

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  • , where the BDD’s wide potential window enables the direct anodic oxidation of cumene into the cumyl cation. Since electricity is directly employed as the oxidizing and reducing reagents, the present protocol is easy to use, suitable for scale-up, and inherently safe. Keywords: aromatic alkyl; boron
  • oxygen on the cathode. Figure 2 shows a proposed mechanism. Anodic oxidation of cumene on the BDD electrode with a wide potential window preferentially affords the cumyl cation as the reaction intermediate. On the other hand, cathodic reduction of dissolved oxygen produces the superoxide and even the
  • straightforward electro-conversion of cumene into acetophenone using boron-doped diamond (BDD) electrodes. The BDD’s wide potential window enabled the direct anodic oxidation of cumene to afford a key reaction intermediate, which cannot be realized by other electrodes such as graphite and Ni. Electrosynthesis is
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Published 07 Sep 2022

Synthesis of protected precursors of chitin oligosaccharides by electrochemical polyglycosylation of thioglycosides

  • Md Azadur Rahman,
  • Kana Kuroda,
  • Hirofumi Endo,
  • Norihiko Sasaki,
  • Tomoaki Hamada,
  • Hiraku Sakai and
  • Toshiki Nokami

Beilstein J. Org. Chem. 2022, 18, 1133–1139, doi:10.3762/bjoc.18.117

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  • process, which involved anodic oxidation at −80 °C and glycosylation at −50 °C. The crude product of the reaction was purified by gel permeation chromatography (GPC), and the monosaccharides 1a–d and oligosaccharides 2a–d (n = 2)–7a–d (n = 7) were isolated. Only thioglycoside 1a (Ar = 4-FC6H4, Eox = 1.70
  • the yield of 7a was very low (1%). These results indicated that the glycosylation temperature was an important parameter for obtaining longer oligosaccharides, and glycosylation might proceed during the anodic oxidation at −80 °C. The temperature of anodic oxidation (T1) was also investigated together
  • with the glycosylation temperature (T2) because glycosylation must occur during the anodic oxidation at elevated temperature (Figure 4). Indeed, formation of oligosaccharides longer than tetrasaccharide 4a was increased at elevated temperature. The highest total yield of oligosaccharides 2a–7a was
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Published 30 Aug 2022

Electrochemical Friedel–Crafts-type amidomethylation of arenes by a novel electrochemical oxidation system using a quasi-divided cell and trialkylammonium tetrafluoroborate

  • Hisanori Senboku,
  • Mizuki Hayama and
  • Hidetoshi Matsuno

Beilstein J. Org. Chem. 2022, 18, 1040–1046, doi:10.3762/bjoc.18.105

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  • unchanged and mono-amidomethylation product 2 was formed in 16% yield along with 6% of di-substituted product 3 by analysis of the 1H NMR spectrum of the crude product mixture using 1,4-dinitrobenzene as an internal standard (Table 1, entry 1). These results indicate that anodic oxidation of not the
  • electrochemical oxidation system will be promising as a powerful tool for electroorganic synthesis using anodic oxidation. In addition, trialkylammonium salts have high potential both as novel supporting electrolytes and proton sources for cathodic reduction in the anodic oxidation process. Generation of N
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Published 18 Aug 2022

Electrochemical vicinal oxyazidation of α-arylvinyl acetates

  • Yi-Lun Li,
  • Zhaojiang Shi,
  • Tao Shen and
  • Ke-Yin Ye

Beilstein J. Org. Chem. 2022, 18, 1026–1031, doi:10.3762/bjoc.18.103

Graphical Abstract
  • ). The enol acetate A first undergoes anodic oxidation to form a radical cation intermediate B, which is then intercepted by azidotrimethylsilane to afford the benzyl radical C. Subsequently, this radical is further anodically oxidized to its oxocarbenium ion intermediate D, which finally reacts with
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Published 12 Aug 2022

First example of organocatalysis by cathodic N-heterocyclic carbene generation and accumulation using a divided electrochemical flow cell

  • Daniele Rocco,
  • Ana A. Folgueiras-Amador,
  • Richard C. D. Brown and
  • Marta Feroci

Beilstein J. Org. Chem. 2022, 18, 979–990, doi:10.3762/bjoc.18.98

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  • chamber (Figure 1). The requirement for a divided cell (a more complicated device than the undivided configuration) arises from the need to protect electrogenerated NHC from its anodic oxidation in the absence of a consumable anode. To ensure good sealing of the electrolysis cell, the sandwich-type
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Published 05 Aug 2022

Synthesis of piperidine and pyrrolidine derivatives by electroreductive cyclization of imine with terminal dihaloalkanes in a flow microreactor

  • Yuki Naito,
  • Naoki Shida and
  • Mahito Atobe

Beilstein J. Org. Chem. 2022, 18, 350–359, doi:10.3762/bjoc.18.39

Graphical Abstract
  • and sustainable synthetic method in the face of increasingly stringent environmental and economic constraints. In this context, several groups have demonstrated the electrochemical synthesis of piperidine and pyrrolidine derivatives by anodic oxidation [22][23][24][25][26]. In contrast, there has been
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Published 29 Mar 2022

Electrocatalytic C(sp3)–H/C(sp)–H cross-coupling in continuous flow through TEMPO/copper relay catalysis

  • Bin Guo and
  • Hai-Chao Xu

Beilstein J. Org. Chem. 2021, 17, 2650–2656, doi:10.3762/bjoc.17.178

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  • alkyne 22 afforded 1.05 g (61%) of product 14 in 13 h (Scheme 3). The productivity could be increased if multiple reactors were employed in parallel [43]. A mechanism for the electrochemical synthesis was proposed based on reported studies (Scheme 4) [3][10]. Anodic oxidation of TEMPO generates the
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Published 28 Oct 2021

CF3-substituted carbocations: underexploited intermediates with great potential in modern synthetic chemistry

  • Anthony J. Fernandes,
  • Armen Panossian,
  • Bastien Michelet,
  • Agnès Martin-Mingot,
  • Frédéric R. Leroux and
  • Sébastien Thibaudeau

Beilstein J. Org. Chem. 2021, 17, 343–378, doi:10.3762/bjoc.17.32

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Published 03 Feb 2021

Oxime radicals: generation, properties and application in organic synthesis

  • Igor B. Krylov,
  • Stanislav A. Paveliev,
  • Alexander S. Budnikov and
  • Alexander O. Terent’ev

Beilstein J. Org. Chem. 2020, 16, 1234–1276, doi:10.3762/bjoc.16.107

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  • [46], Pb(OAc)4 [44][46][47][48][49][50][51], PbO2 [52], Mn(OAc)3 [46], KMnO4 [46], Ag2O [53], AgO [54], Horseradish peroxidase/H2O2 [55], metal-free oxidants PhI(OAc)2 [46], t-BuOOt-Bu [53] or quinones [56] under UV irradiation. Anodic oxidation was also reported [57]. The establishing of the self
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Published 05 Jun 2020

Synthesis of novel multifunctional carbazole-based molecules and their thermal, electrochemical and optical properties

  • Nuray Altinolcek,
  • Ahmet Battal,
  • Mustafa Tavasli,
  • William J. Peveler,
  • Holly A. Yu and
  • Peter J. Skabara

Beilstein J. Org. Chem. 2020, 16, 1066–1074, doi:10.3762/bjoc.16.93

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  • molecular orbital and the lowest unoccupied molecular orbital energy levels (EHOMO, ELUMO) of compounds 7a and 7b were also calculated from the half-way anodic oxidation and onset cathodic reduction peak potentials, with respect to the energy level of ferrocene (4.8 eV below vacuum level) [38] by using the
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Published 19 May 2020

Aryl-substituted acridanes as hosts for TADF-based OLEDs

  • Naveen Masimukku,
  • Dalius Gudeika,
  • Oleksandr Bezvikonnyi,
  • Ihor Syvorotka,
  • Rasa Keruckiene,
  • Dmytro Volyniuk and
  • Juozas V. Grazulevicius

Beilstein J. Org. Chem. 2020, 16, 989–1000, doi:10.3762/bjoc.16.88

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  • compounds. During the anodic oxidation sweeps, compounds 3–6 showed single reversible oxidation speaks, which could be tributed to the oxidation of the acridanyl moiety. Also close values of ionization potentials (IPcv) of the compounds 3–6 obtained from the onset potentials of their oxidation signals were
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Published 13 May 2020

A review of asymmetric synthetic organic electrochemistry and electrocatalysis: concepts, applications, recent developments and future directions

  • Munmun Ghosh,
  • Valmik S. Shinde and
  • Magnus Rueping

Beilstein J. Org. Chem. 2019, 15, 2710–2746, doi:10.3762/bjoc.15.264

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  • modification of anodes. As in case of asymmetric electroreduction, the prime reasonable entry in the area of asymmetric electrooxidation using chemically modified electrode was made by a successive work by Miller’s group in 1976. Using modified graphite electrodes, they successfully reported anodic oxidation
  • as an additional supporting electrolyte along with chiral 55c (Scheme 22) [42][57]. In 2003, Nishiguchi’s group explored the anodic oxidation of enol acetates 57 upon constant current electrolysis in an undivided cell at −78 ºC in a mixture of solvents containing (S)-tetraethylammonium
  • asymmetric induction was proposed to be realized via a combination of chiral Lewis acid-bound radical (generated through a single-electron anodic oxidation) and benzylic radical, generated through the anodic oxidation of 95. As per the proposed catalytic cycle, initial coordination of the Lewis acid catalyst
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Published 13 Nov 2019

Oxidative and reductive cyclization in stiff dithienylethenes

  • Michael Kleinwächter,
  • Ellen Teichmann,
  • Lutz Grubert,
  • Martin Herder and
  • Stefan Hecht

Beilstein J. Org. Chem. 2018, 14, 2812–2821, doi:10.3762/bjoc.14.259

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  • Cyclization by anodic oxidation In initial experiments, the electrochemical behavior of the methyl-substituted derivative bearing six-membered rings (sDTE66-Me) was investigated. For both configurational isomers, i.e., E- and Z-sDTE66-Me, an irreversible oxidation wave corresponding to the transfer of two
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Published 09 Nov 2018

Recent advances in hypervalent iodine(III)-catalyzed functionalization of alkenes

  • Xiang Li,
  • Pinhong Chen and
  • Guosheng Liu

Beilstein J. Org. Chem. 2018, 14, 1813–1825, doi:10.3762/bjoc.14.154

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  • first hypervalent iodine(III)-catalyzed reaction, in which the iodine(III) reagent was in situ generated by anodic oxidation under electrochemical conditions [36]. Critical to success of this process is that the oxidation potential of the catalysts should be much lower than those of the substrates and
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Published 18 Jul 2018

Cobalt–metalloid alloys for electrochemical oxidation of 5-hydroxymethylfurfural as an alternative anode reaction in lieu of oxygen evolution during water splitting

  • Jonas Weidner,
  • Stefan Barwe,
  • Kirill Sliozberg,
  • Stefan Piontek,
  • Justus Masa,
  • Ulf-Peter Apfel and
  • Wolfgang Schuhmann

Beilstein J. Org. Chem. 2018, 14, 1436–1445, doi:10.3762/bjoc.14.121

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  • storable energy carrier. We report on the anodic oxidation of 5-hydroxymethylfurfural (HMF) to afford the more valuable product 2,5-furandicarboxylic acid (FDCA) as a suitable alternative to the oxygen evolution reaction. Notably, HMF oxidation is thermodynamically more favorable than water oxidation and
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Published 13 Jun 2018

Anodic oxidation of bisamides from diaminoalkanes by constant current electrolysis

  • Tatiana Golub and
  • James Y. Becker

Beilstein J. Org. Chem. 2018, 14, 861–868, doi:10.3762/bjoc.14.72

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  • monoamides upon anodic oxidation in methanol/LiClO4 because both types undergo majorly mono- and dimethoxylations at the α-position to the N atom. However, in cases where the spacer contains two methylene groups only the anodic process leads mostly to CH2–CH2 bond cleavage to afford products of type
  • : anodic oxidation; bisamides; constant current electrolysis; methoxylation; Introduction It is well known that the anodic oxidation of amides involving a hydrogen atom at the α-position to the N atom could undergo alkoxylation, carboxylation and hydroxylation at this position [1][2][3][4][5] (Scheme 1
  • ] (Scheme 3). Interestingly, in the case of anodic oxidation of aromatic amides of type Ph2CHCONHAr, where no hydrogen atom is present at the α-position to the N atom, they undergo three types of bond cleavages (instead of the common substitution) [13] (Scheme 4). Previously we investigated [14] the effect
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Published 16 Apr 2018

Stepwise radical cation Diels–Alder reaction via multiple pathways

  • Ryo Shimizu,
  • Yohei Okada and
  • Kazuhiro Chiba

Beilstein J. Org. Chem. 2018, 14, 704–708, doi:10.3762/bjoc.14.59

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  • pathways. Results and Discussion The present work began with the synthesis of the aryl vinyl ether 1 from p-propylphenol in 2 steps (Scheme S1 and Figure S1 in Supporting Information File 1). Both E- and Z-forms were readily purified by silica gel column chromatography. When the anodic oxidation of the Z
  • cyclohexenes via thermal and/or photochemical processes and therefore, we carried out the anodic oxidation of vinylcyclobutane 4 in the absence of 2,3-dimethyl-1,3-butadiene (2, Scheme 5 and Supporting Information File 1, Figure S2). Interestingly, the rearrangement took place effectively to give Diels–Alder
  • material is lost. Indeed, the anodic oxidation of either the Z- (1Z) or the E-form (1E) in the absence of 2,3-dimethyl-1,3-butadiene (2) led to isomerization. In other words, inversion of the configuration of the radical cation 1·+ proceeds readily, leading to a loss in stereoselectivity. The radical
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Published 27 Mar 2018
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