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Search for "[4 2] cycloaddition" in Full Text gives 85 result(s) in Beilstein Journal of Organic Chemistry.

A Diels–Alder probe for discovery of natural products containing furan moieties

  • Alyssa S. Eggly,
  • Namuunzul Otgontseren,
  • Carson B. Roberts,
  • Amir Y. Alwali,
  • Haylie E. Hennigan and
  • Elizabeth I. Parkinson

Beilstein J. Org. Chem. 2024, 20, 1001–1010, doi:10.3762/bjoc.20.88

Graphical Abstract
  • , respectively. In addition to the substrates that did undergo the Diels–Alder [4 + 2] cycloaddition, some substrates were unable to react with our chemical probe. For example, 18 did covalently attach to the probe, but there is no 18 leftover to quantify the amount of conversion. Additionally, the mass spectrum
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Published 02 May 2024
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  • , subsequent RE affords 7. Conversely, if the formal [4 + 2] cycloaddition occurs along the course elucidated in path B, the generation of 8 is expected. Similarly, when the formal [4 + 2] cycloaddition follows the course depicted in path C, the generation of 9 is envisaged. Among these compounds, 10 features
  • + 2] cycloaddition reaction with the anthracene moiety, yielding the DA cycloadduct 17. To achieve the conversion of the alkyne moiety of 16 into TCBD, the addition of five equivalents of TCNE to 16 or one equivalent of TCNE to 17 is required. This results in the formation of TCBD compound 18 bearing
  • agent for TCNE. Anthracene-based ynamide 16 offers two potential reactive sites for TCNE, one residing at the anthracene moiety and other at the alkyne moiety, as shown in Scheme 9 [71]. As exemplified by Trolez et al., the introduction of one equivalent of TCNE to 16 at room temperature initiates a [4
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Published 22 Jan 2024

Biphenylene-containing polycyclic conjugated compounds

  • Cagatay Dengiz

Beilstein J. Org. Chem. 2023, 19, 1895–1911, doi:10.3762/bjoc.19.141

Graphical Abstract
  • reaction, followed by a Au(I)-catalyzed [4 + 2] cycloaddition reaction to afford the target substrate 96 and its regioisomer 95 in a 2:1 ratio (Scheme 20). POA 87 was obtained on Au(111) at 610 K after Ullmann-type coupling and aromatic dehydrogenation of compound 96. Apart from these studies, the
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Published 13 Dec 2023

Anion–π catalysis on carbon allotropes

  • M. Ángeles Gutiérrez López,
  • Mei-Ling Tan,
  • Giacomo Renno,
  • Augustina Jozeliūnaitė,
  • J. Jonathan Nué-Martinez,
  • Javier Lopez-Andarias,
  • Naomi Sakai and
  • Stefan Matile

Beilstein J. Org. Chem. 2023, 19, 1881–1894, doi:10.3762/bjoc.19.140

Graphical Abstract
  • preferred to maximize orbital overlap (Figure 4) [63]. For π-acidic surfaces, the exo transition state VII is more completely accessible (Figure 4). The 3-hydroxy-2-pyrone (24) was selected as representative diene for the anionic [4 + 2] cycloaddition with maleimide 25 as standard dienophile to afford endo
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Published 12 Dec 2023

Morpholine-mediated defluorinative cycloaddition of gem-difluoroalkenes and organic azides

  • Tzu-Yu Huang,
  • Mario Djugovski,
  • Sweta Adhikari,
  • Destinee L. Manning and
  • Sudeshna Roy

Beilstein J. Org. Chem. 2023, 19, 1545–1554, doi:10.3762/bjoc.19.111

Graphical Abstract
  • are available [2][3], only a couple of cycloaddition reactions has been reported [4]. For example, [3 + 2] dipolar cycloadditions to form saturated difluoroisoxazolidines [5][6] and difluoropyrrolidines [7] and [4 + 2] cycloaddition reactions with gem-difluoro-1,3-dienes [8]. The overall landscape of
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Published 05 Oct 2023

Construction of hexabenzocoronene-based chiral nanographenes

  • Ranran Li,
  • Di Wang,
  • Shengtao Li and
  • Peng An

Beilstein J. Org. Chem. 2023, 19, 736–751, doi:10.3762/bjoc.19.54

Graphical Abstract
  • Sonogashira cross-coupling reaction of phenylacetylene 50 and 1,4-dibromotetrafluorobenzene. The resulting bis[aryl(ethynyl)]tetrafluorobenzene 59 was able to undergo a 2-fold [4 + 2] cycloaddition reaction with cyclopentadienone 2, affording polyaromatic 60 in a 70% yield. The final step was the Scholl
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Published 30 May 2023

1,4-Dithianes: attractive C2-building blocks for the synthesis of complex molecular architectures

  • Bram Ryckaert,
  • Ellen Demeyere,
  • Frederick Degroote,
  • Hilde Janssens and
  • Johan M. Winne

Beilstein J. Org. Chem. 2023, 19, 115–132, doi:10.3762/bjoc.19.12

Graphical Abstract
  • single-cis conformation. Ando and co-workers prepared the symmetrical 1,4-dithiane 41 (Scheme 9a) [55], and amply illustrated the concept by reacting it in a [4 + 2] cycloaddition with a highly reactive diazo dienophile (Cookson’s reagent or 4-phenyl-1,2,4-triazoline-3,5-dione (PTAD)) to afford the bis
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Published 02 Feb 2023

Practical synthesis of isocoumarins via Rh(III)-catalyzed C–H activation/annulation cascade

  • Qian-Ci Gao,
  • Yi-Fei Li,
  • Jun Xuan and
  • Xiao-Qiang Hu

Beilstein J. Org. Chem. 2023, 19, 100–106, doi:10.3762/bjoc.19.10

Graphical Abstract
  • recently, the same group developed an efficient Rh(III)-catalyzed C–H cross-coupling of enaminones with diazodicarbonyls for the divergent construction of isocoumarins and naphthalenes [27]. Moreover, Loh et al. disclosed a Rh-catalyzed formal [4 + 2] cycloaddition of enaminones with diazocarbonyls [28
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Published 30 Jan 2023

A facile approach to spiro[dihydrofuran-2,3'-oxindoles] via formal [4 + 1] annulation reaction of fused 1H-pyrrole-2,3-diones with diazooxindoles

  • Pavel A. Topanov,
  • Anna A. Maslivets,
  • Maksim V. Dmitriev,
  • Irina V. Mashevskaya,
  • Yurii V. Shklyaev and
  • Andrey N. Maslivets

Beilstein J. Org. Chem. 2022, 18, 1532–1538, doi:10.3762/bjoc.18.162

Graphical Abstract
  • investigated for FPDs: the [4 + 2] cycloaddition with alkenes resulting in pyran-annulated products [27][28][29][30][31][32][33][34] and the [3 + 2] cycloaddition with nitrones resulting in isoxazole-annulated products [35][36][37] (Scheme 2). However, formal [4 + 1] cycloaddition reactions for FPDs remain to
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Published 10 Nov 2022

Enzymes in biosynthesis

  • Jeroen S. Dickschat

Beilstein J. Org. Chem. 2022, 18, 1131–1132, doi:10.3762/bjoc.18.116

Graphical Abstract
  • reactions that were first known from synthetic chemistry, e.g., pericyclases can promote pericyclic reactions such as [4 + 2]-cycloaddition, also known as Diels–Alder reaction [3]. In fact, most named reactions in organic chemistry originally discovered by synthetic chemists have an analogy in nature
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Published 30 Aug 2022

Copper-catalyzed multicomponent reactions for the efficient synthesis of diverse spirotetrahydrocarbazoles

  • Shao-Cong Zhan,
  • Ren-Jie Fang,
  • Jing Sun and
  • Chao-Guo Yan

Beilstein J. Org. Chem. 2022, 18, 796–808, doi:10.3762/bjoc.18.80

Graphical Abstract
  • underwent a [4 + 2] cycloaddition reaction (reaction 1 in Scheme 1) [69][70][71][72][73][74]. This metal-catalyzed one-pot reaction not only combined the advantages of a traditional Diels–Alder reaction and the recently developed multicomponent reactions, but also meets the goal of green and sustainable
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Published 07 Jul 2022

Tri(n-butyl)phosphine-promoted domino reaction for the efficient construction of spiro[cyclohexane-1,3'-indolines] and spiro[indoline-3,2'-furan-3',3''-indolines]

  • Hui Zheng,
  • Ying Han,
  • Jing Sun and
  • Chao-Guo Yan

Beilstein J. Org. Chem. 2022, 18, 669–679, doi:10.3762/bjoc.18.68

Graphical Abstract
  • [cyclohexane-1,3'-indoline] 3a albeit with low yields (entries 4–6 in Table 1). The spiro[cyclohexane-1,3'-indoline] 3a was clearly produced by a tri(n-butyl)phosphine-catalyzed formal [4 + 2] cycloaddition reaction. This result showed that tri(n-butyl)phosphine has a higher nucleophilic catalytic ability than
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Published 14 Jun 2022

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

Graphical Abstract
  • esterified pyridines 29 in moderate to high yield. It is worth noting that 1,3-enynes 28 bearing internal alkyne moieties were not tolerated as substrates. In 2016, Aïssa and co-workers reported a nickel-catalyzed [4 + 2]-cycloaddition of 3-azetidinones 30 with 1,3-enynes 31 for the synthesis of 3‑hydroxy
  • -4,5-alkyl-substituted pyridines 33 (Scheme 11) [53]. The transformation involved a two-step sequence of successive reactions: Firstly, the nickel-catalyzed [4 + 2]-cycloaddition of 1,3-enynes 31 and N-Ts-substituted 3-azetidinone 30 afforded dihydropyridinones 32 in good yield. The next step involved
  • chalcogenoamination. The derivatization of 5‑selenyl- and 5-sulfenyl-substituted nicotinates. The tandem reaction of nitriles, Reformatsky reagents, and 1,3-enynes. Nickel-catalyzed [4 + 2]-cycloaddition of 3-azetidinones with 1,3-enynes. Electrophilic iodocyclization of 2-nitro-1,3-enynes to pyrroles. Electrophilic
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Published 22 Sep 2021

Recent advances in the syntheses of anthracene derivatives

  • Giovanni S. Baviera and
  • Paulo M. Donate

Beilstein J. Org. Chem. 2021, 17, 2028–2050, doi:10.3762/bjoc.17.131

Graphical Abstract
  • synthesized substituted anthraquinones bearing Me, Et, or hydroxy groups, such as compounds 176a–e, in moderate to good yields (45–94%) through a [4 + 2] cycloaddition reaction of 1,4-substituted naphthoquinones 174 and α,β-unsaturated aldehydes 175 catalyzed by ʟ-proline. During optimization studies, the
  • -Proline-catalyzed [4 + 2] cycloaddition reaction of naphthoquinones and α,β-unsaturated aldehydes. Iridium-catalyzed [2 + 2 + 2] cycloaddition of a 1,2-bis(propiolyl)benzene derivative with alkynes. Synthesis of several anthraquinone derivatives by using InCl3 and molecular iodine. Indium-catalyzed
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Published 10 Aug 2021

Asymmetric organocatalyzed synthesis of coumarin derivatives

  • Natália M. Moreira,
  • Lorena S. R. Martelli and
  • Arlene G. Corrêa

Beilstein J. Org. Chem. 2021, 17, 1952–1980, doi:10.3762/bjoc.17.128

Graphical Abstract
  • -hydroxycoumarin (1) with the chiral catalyst 48, as shown in Scheme 15 [48]. The enantioselective synthesis of dihydrocoumarins 51 from an inverse demand [4 + 2] cycloaddition of ketenes 50 with o-quinone methides 49 using carbene catalyst (NHC) 52 was described by Ye and co-workers [49].This transformation
  • oxidative [4 + 2] cycloaddition with unsaturated aldehydes 57 [51]. The methodology draws attention for the wide variety of products 58 obtained with moderate to excellent yields and enantiomeric excesses (Scheme 18). Activation via noncovalent bonding Besides the activation mode via a covalent bond, as
  • synthesis of 3,4-dihydrocoumarins 80 bearing a cyclohexene ring, through [4 + 2] cycloaddition between 2,4-dienals 79 and 3-coumarincarboxylates 43. This stereoselective transformation was performed using a squaramide 81 derivative catalyst, which activates the aldehyde with the formation of an enamine
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Published 03 Aug 2021

Microwave-assisted multicomponent reactions in heterocyclic chemistry and mechanistic aspects

  • Shivani Gulati,
  • Stephy Elza John and
  • Nagula Shankaraiah

Beilstein J. Org. Chem. 2021, 17, 819–865, doi:10.3762/bjoc.17.71

Graphical Abstract
  • as depicted in Scheme 56 wherein cycloketone 141 in presence of AcOH exists in equilibrium with enol form B. The imine intermediate A (condensation of aldehyde and pyrazolylamine) surrenders to a [4 + 2] cycloaddition with the enol form B and result in cycloaddition adduct C. A further dehydration
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Published 19 Apr 2021

Breakdown of 3-(allylsulfonio)propanoates in bacteria from the Roseobacter group yields garlic oil constituents

  • Anuj Kumar Chhalodia and
  • Jeroen S. Dickschat

Beilstein J. Org. Chem. 2021, 17, 569–580, doi:10.3762/bjoc.17.51

Graphical Abstract
  • molecule of 5 to yield 10 and 2. Alternatively, 5 can decompose to 10 and thioacroleine (14) by a Cope elimination, which explains the formation of the heterocycles 6 and 7 by dimerization through a [4 + 2] cycloaddition [5]. Compounds 6 and 7 were also reported to be formed from 5 during gas
  • chromatographic (GC) analysis by an unknown mechanism [9] (7 was confused with its double bond regioisomer 3-vinyl-3,6-dihydro-1,2-dithiine (8) in this study [5]). Under these conditions the formation of the heterocyclic disulfides 7 and 8 may not involve a dimerization of 14, as a [4 + 2] cycloaddition is not a
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Published 26 Feb 2021

Diels–Alder reaction of β-fluoro-β-nitrostyrenes with cyclic dienes

  • Savva A. Ponomarev,
  • Roman V. Larkovich,
  • Alexander S. Aldoshin,
  • Andrey A. Tabolin,
  • Sema L. Ioffe,
  • Jonathan Groß,
  • Till Opatz and
  • Valentine G. Nenajdenko

Beilstein J. Org. Chem. 2021, 17, 283–292, doi:10.3762/bjoc.17.27

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  • (51.6 kJ mol−1). Whereas the entropies of activation (ΔS≠) were −181.8 and −183.1 J mol−1 K−1 for the formation of the endo and exo-isomers, respectively. The values obtained are typical for concerted [4 + 2]-cycloaddition reactions [60]. The free energies of activation () were calculated for 121.26 kJ
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Published 27 Jan 2021

Dawn of a new era in industrial photochemistry: the scale-up of micro- and mesostructured photoreactors

  • Emine Kayahan,
  • Mathias Jacobs,
  • Leen Braeken,
  • Leen C.J. Thomassen,
  • Simon Kuhn,
  • Tom van Gerven and
  • M. Enis Leblebici

Beilstein J. Org. Chem. 2020, 16, 2484–2504, doi:10.3762/bjoc.16.202

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Published 08 Oct 2020

Recent developments in enantioselective photocatalysis

  • Callum Prentice,
  • James Morrisson,
  • Andrew D. Smith and
  • Eli Zysman-Colman

Beilstein J. Org. Chem. 2020, 16, 2363–2441, doi:10.3762/bjoc.16.197

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Published 29 Sep 2020

Reactions of 3-aryl-1-(trifluoromethyl)prop-2-yn-1-iminium salts with 1,3-dienes and styrenes

  • Thomas Schneider,
  • Michael Keim,
  • Bianca Seitz and
  • Gerhard Maas

Beilstein J. Org. Chem. 2020, 16, 2064–2072, doi:10.3762/bjoc.16.173

Graphical Abstract
  • not isolated but directly converted into the norbornadienyl trifluoromethyl ketone 3 (Scheme 1). The smooth [4 + 2] cycloaddition of 1a as compared to comparably harsh thermal conditions of other propyne ketiminium salts with an internal acetylenic bond reveals the activating influence of the CF3
  • phenylacetylene and DMBD or isoprene [31]. On the other hand, the 1,1-diphenylpropargyl cation was found to react with 2,4-dimethyl-1,3-pentadiene to afford a product derived from an initial [4 + 2] cycloaddition [32]. When the Diels–Alder reaction of 1a with DMBD was carried out at room temperature instead of 0
  • yielding a dihydronaphthalene 16. Formally speaking, 15 results from a [2 + 2] cycloaddition and 16 from a [4 + 2] cycloaddition (Diels–Alder reaction). Under the reaction conditions, cyclobutene 15 undergoes a fast electrocyclic ring opening leading to a butadiene 17, which is finally transformed into 2
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Published 24 Aug 2020

Heterogeneous photocatalysis in flow chemical reactors

  • Christopher G. Thomson,
  • Ai-Lan Lee and
  • Filipe Vilela

Beilstein J. Org. Chem. 2020, 16, 1495–1549, doi:10.3762/bjoc.16.125

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Published 26 Jun 2020

An overview on disulfide-catalyzed and -cocatalyzed photoreactions

  • Yeersen Patehebieke

Beilstein J. Org. Chem. 2020, 16, 1418–1435, doi:10.3762/bjoc.16.118

Graphical Abstract
  • method is also applicable for the synthesis of a wide variety of cyclopentane derivatives [12]. In 2017, Huang and co-workers reported a [4 + 2] cycloaddition reaction promoted by blue LED light, using aromatic olefins as the precursor, an acridinium photoredox catalyst (Mes–Acr–Ph+BF4−), and disulfide
  • as the HAT cocatalyst, to generate the tetralin skeleton, which is widely seen in drugs and pesticide synthesis (Scheme 5) [13]. Diphenyl disulfide played an important role in the [4 + 2] cycloaddition process. Without diphenyl disulfide, only the product of the [2 + 2] cycloaddition was observed
  • nonpolar solvent, PhSSPh accelerates the [4 + 2] cycloaddition of the radical cation 19, but the electron-relay catalyst promotes the [2 + 2] cycloaddition. The radical cation 19 can undergo two different types of cyclizations, subject to the relative reactivity of its radical and cation center. The α
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Published 23 Jun 2020

Recent applications of porphyrins as photocatalysts in organic synthesis: batch and continuous flow approaches

  • Rodrigo Costa e Silva,
  • Luely Oliveira da Silva,
  • Aloisio de Andrade Bartolomeu,
  • Timothy John Brocksom and
  • Kleber Thiago de Oliveira

Beilstein J. Org. Chem. 2020, 16, 917–955, doi:10.3762/bjoc.16.83

Graphical Abstract
  • (Scheme 26) [61][67][68]. In this section, both reactions are presented and discussed. Singlet oxygen in pericyclic reactions Many important organic transformations can be performed by singlet oxygen including ene, [2 + 2] and [4 + 2] cycloaddition reactions for the formation of hydroperoxides, dioxetanes
  • concerted) are still ongoing. The generally accepted mechanisms for these reactions are shown in Scheme 27, and propose a stepwise mechanism for ene and [2 + 2] cycloaddition, and a concerted mechanism for [4 + 2] cycloaddition [67]. In this part of the review, we decided to highlight the historically
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Published 06 May 2020

Synthesis of acremines A, B and F and studies on the bisacremines

  • Nils Winter and
  • Dirk Trauner

Beilstein J. Org. Chem. 2019, 15, 2271–2276, doi:10.3762/bjoc.15.219

Graphical Abstract
  • be derived from two acremine F (5) units by a formal [4 + 2] cycloaddition followed by condensation and oxidation. Given the diversity and structural beauty of this class of natural products, it is not surprising that the acremine family has attracted the attention of the synthetic community [6][7][8
  • both secondary allylic alcohols and afforded 2 in good overall yield (Scheme 3). Bisacremine E (7) was proposed to be formed in nature via [4 + 2] cycloaddition involving two acremine F (5) units [4]. Although dimerization of 5 through a Diels–Alder cycloaddition is not electronically favorable, we
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Published 23 Sep 2019
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