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Search for "diradicals" in Full Text gives 13 result(s) in Beilstein Journal of Organic Chemistry.

Exploring the role of halogen bonding in iodonium ylides: insights into unexpected reactivity and reaction control

  • Carlee A. Montgomery and
  • Graham K. Murphy

Beilstein J. Org. Chem. 2023, 19, 1171–1190, doi:10.3762/bjoc.19.86

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  • EDA complexes between alkenes and iodonium ylides with blue light was believed to induce intramolecular iodocyclobutane formation, followed by cyclopropane formation. These reactions were believed to either involve 1,2-diradicals on the ylide, which could engage the complexed alkene, or to involve
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Published 07 Aug 2023

Recent synthesis of thietanes

  • Jiaxi Xu

Beilstein J. Org. Chem. 2020, 16, 1357–1410, doi:10.3762/bjoc.16.116

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  • diradicals as intermediates. To explain the regioselectivity, theoretical calculations were performed with thiochalcone and acrylonitrile as model substrates. For the frontier molecular orbital treatment, the largest coefficients in both HOMO and LUMO of thiochalcone existed on the sulfur atom, while the
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Published 22 Jun 2020

Synthesis of 1-indanones with a broad range of biological activity

  • Marika Turek,
  • Dorota Szczęsna,
  • Marek Koprowski and
  • Piotr Bałczewski

Beilstein J. Org. Chem. 2017, 13, 451–494, doi:10.3762/bjoc.13.48

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  • to 1-indanones 103 has been proposed by Wessig et al. [57]. The authors have used a photochemical cyclization of ketones 100 containing good leaving groups X adjacent to the carbonyl group. As a result of irradiation, 1,4-diradicals 101 have been formed from ketones 100 through n–π* excitation
  • followed by 1,5-hydrogen migration involving the o-alkyl substituent. 1,5-Diradicals 102 were formed as a result of elimination of acid HX from 1,4-diradicals 101. Finally, 1,5-diradicals 102 underwent cyclization to give 1-indanones 103 in good yields and 2-alkylidene benzo[c]furan derivatives 104 as
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Published 09 Mar 2017

Dimerization reactions of aryl selenophen-2-yl-substituted thiocarbonyl S-methanides as diradical processes: a computational study

  • Michael L. McKee,
  • Grzegorz Mlostoń,
  • Katarzyna Urbaniak and
  • Heinz Heimgartner

Beilstein J. Org. Chem. 2017, 13, 410–416, doi:10.3762/bjoc.13.44

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  • located (see Supporting Information File 1, Figure SI1), and three of them are considered to be able to form another C–C bond to give, potentially, products 9, 13, or 14 (Scheme 2, Figure 3 and Figure 4). All of the conformers 12 are diradicals as judged by a spin-squared value close to 1.0 (see
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Published 03 Mar 2017

Synthesis of ferrocenyl-substituted 1,3-dithiolanes via [3 + 2]-cycloadditions of ferrocenyl hetaryl thioketones with thiocarbonyl S-methanides

  • Grzegorz Mlostoń,
  • Róża Hamera-Fałdyga,
  • Anthony Linden and
  • Heinz Heimgartner

Beilstein J. Org. Chem. 2016, 12, 1421–1427, doi:10.3762/bjoc.12.136

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  • thiocarbonyl S-methanides with aryl and hetaryl thioketones, we propose that the reactions with ferrocenyl thioketones 1 occur predominantly via an intermediate 1,5-diradical. The formation of the sterically more crowded 1,3-dithiolanes 5a–g confirms that the stabilized 1,5-diradicals of type 7 (Scheme 4) are
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Published 08 Jul 2016

The EIMS fragmentation mechanisms of the sesquiterpenes corvol ethers A and B, epi-cubebol and isodauc-8-en-11-ol

  • Patrick Rabe and
  • Jeroen S. Dickschat

Beilstein J. Org. Chem. 2016, 12, 1380–1394, doi:10.3762/bjoc.12.132

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  • abbreviated by PMA135(179)). The fragmentation of A1+ may proceed via cleavage of two bonds to G1+, followed by loss of ketene via inductive cleavage and of two hydrogens by α-cleavage to yield H1+. The formation of diradicals that may be highly transient species and are shown in brackets in Scheme 2, can be
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Published 05 Jul 2016

Diradical reaction mechanisms in [3 + 2]-cycloadditions of hetaryl thioketones with alkyl- or trimethylsilyl-substituted diazomethanes

  • Grzegorz Mlostoń,
  • Paulina Pipiak and
  • Heinz Heimgartner

Beilstein J. Org. Chem. 2016, 12, 716–724, doi:10.3762/bjoc.12.71

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  • spontaneous desulfurization, are the main products. In contrast, reactions with diazoethane occurred predominantly via initially formed diradicals, which in cascade processes gave sterically crowded 4,4,5,5-tetrahetaryl-1,3-dithiolanes as major products. Finally, the reaction of dihetaryl thioketones with
  • (trimethylsilyl)diazomethane occur smoothly at −75 °C leading to the corresponding 4,4,5,5-tetrahetaryl-1,3-dithiolanes as the exclusive [3 + 2]-cycloadducts formed via a cascade of postulated diradicals. The presence of S or Se atoms in the hetaryl rings is of importance for stabilizing diradical intermediates
  • . Remarkably, in no single case, the ‘head-to-head dimerization’ of aryl/hetaryl and dihetaryl substituted thiocarbonyl ylides was observed. Keywords: [3 + 2]-cycloadditions; diazoalkanes; diradicals; 1,3-dithiolanes; reaction mechanisms; thioketones; Introduction Cycloaddition reactions belong to the most
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Published 14 Apr 2016

Solving the puzzling competition of the thermal C2–C6 vs Myers–Saito cyclization of enyne-carbodiimides

  • Anup Rana,
  • Mehmet Emin Cinar,
  • Debabrata Samanta and
  • Michael Schmittel

Beilstein J. Org. Chem. 2016, 12, 43–49, doi:10.3762/bjoc.12.6

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  • and Discussion The proper description of organic reactions involving diradical intermediates and transition state structures remains a difficult task in quantum chemistry [27][28][29][30][31][32][33][34][35]. Singlet diradicals have two electronic configurations that can only be treated accurately by
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Published 11 Jan 2016

Substituent effect on the energy barrier for σ-bond formation from π-single-bonded species, singlet 2,2-dialkoxycyclopentane-1,3-diyls

  • Jianhuai Ye,
  • Yoshihisa Fujiwara and
  • Manabu Abe

Beilstein J. Org. Chem. 2013, 9, 925–933, doi:10.3762/bjoc.9.106

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  • 10.3762/bjoc.9.106 Abstract Background: Localized singlet diradicals are in general quite short-lived intermediates in processes involving homolytic bond-cleavage and formation reactions. In the past decade, long-lived singlet diradicals have been reported in cyclic systems such as cyclobutane-1,3-diyls
  • and cyclopentane-1,3-diyls. Experimental investigation of the chemistry of singlet diradicals has become possible. The present study explores the substituents and the effect of their substitution pattern at the C(1)–C(3) positions on the lifetime of singlet octahydropentalene-1,3-diyls to understand
  • the role of the substituents on the reactivity of the localized singlet diradicals. Results: A series of singlet 2,2-dialkoxy-1,3-diaryloctahydropentalene-1,3-diyls DR were generated in the photochemical denitrogenation of the corresponding azoalkanes AZ. The ring-closed products CP, i.e., 3,3
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Published 14 May 2013

The chemistry of bisallenes

  • Henning Hopf and
  • Georgios Markopoulos

Beilstein J. Org. Chem. 2012, 8, 1936–1998, doi:10.3762/bjoc.8.225

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Published 15 Nov 2012

Photoreactions of cyclic sulfite esters: Evidence for diradical intermediates

  • Rick C. White,
  • Benny E. Arney Jr. and
  • Heiko Ihmels

Beilstein J. Org. Chem. 2012, 8, 1208–1212, doi:10.3762/bjoc.8.134

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  • substituted sulfite ester is reported. The performance of photoreactions under relatively mild reaction conditions enables the detection of products that have not been observed in previous studies. It is concluded that, complementary to the initially proposed carbene intermediates, diradicals may also be
  • considered. Keywords: diradicals; mechanisms; photochemistry; Introduction Photoinduced ring-opening or ring-fragmentation processes constitute an important type of reaction in organic photochemistry and have been examined both from a mechanistic and a synthetic point of view [1][2][3][4][5]. Mechanistic
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Published 30 Jul 2012

Intraannular photoreactions in pseudo-geminally substituted [2.2]paracyclophanes

  • Henning Hopf,
  • Vitaly Raev and
  • Peter G. Jones

Beilstein J. Org. Chem. 2011, 7, 658–667, doi:10.3762/bjoc.7.78

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  • different conformations in the ground state, because of possible rotation around the various σ-bonds, but this situation becomes even more intricate when the substrates are photochemically excited. For example, on photoexcitation diradicals 17 (Scheme 7) should be the intermediates in conceivable cis–trans
  • -isomerizations, e.g., 11→18, and these diradicals could undergo very different subsequent reactions (in which, of course, it could also be of importance whether these intermediates are singlets or triplets). To test for the possible formation of radical intermediates in the above photocyclizations, we decided to
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Published 24 May 2011

Heavy atom effects in the Paternò–Büchi reaction of pyrimidine derivatives with 4,4’-disubstituted benzophenones

  • Feng-Feng Kong,
  • Jian-Bo Wang and
  • Qin-Hua Song

Beilstein J. Org. Chem. 2011, 7, 113–118, doi:10.3762/bjoc.7.16

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  • temperature effects on the regioselectivity and the photochemical efficiency. We have demonstrated that the temperature-dependent regioselectivity is derived from the conformational properties of the intermediate triplet 1,4-diradicals. The observations show that the reaction temperature influences the
  • regioselectivity by changing the populations of two regioisomeric diradicals as a result of differences in the potential energies of two stable conformers, the productive conformation of the triplet diradical and the unproductive conformation of the triplet diradical, for each regioisomeric diradical [9][11]. To
  • the ISC processes in the triplet 1,4-diradicals, k2I/k2I’ versus k3I/k3I’ and (iv) the relative rate constants of the bond-forming and bond-breaking step from the singlet 1,4-diradical C5-1DR1 and C6-1DR1, k2b/k2c versus k3b/k3c. According to the Curtin–Hammett principle [20], the ratios of the
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Published 26 Jan 2011
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