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Search for "organoboron" in Full Text gives 35 result(s) in Beilstein Journal of Organic Chemistry.

Thienothiophene-based organic light-emitting diode: synthesis, photophysical properties and application

  • Recep Isci and
  • Turan Ozturk

Beilstein J. Org. Chem. 2023, 19, 1849–1857, doi:10.3762/bjoc.19.137

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  • absorption. A solution-processed OLED was fabricated using low turn-on voltage, which had performances with maximum power, current, and external quantum efficiencies of 6.70 lm/W, 10.6 cd/A, and 4.61%, respectively. Keywords: OLED; organoboron; solution processes; thienothiophene; triphenylamine
  • for organic electronic applications [12][35]. Dimesitylboron (DMB), with its unoccupied p-orbital, is an electron-acceptor organoboron compound used in several donor–acceptor systems to provide the system with pull–push interaction [36][37]. In this work, we have designed and synthesized a D–π–A model
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Published 07 Dec 2023

Application of N-heterocyclic carbene–Cu(I) complexes as catalysts in organic synthesis: a review

  • Nosheen Beig,
  • Varsha Goyal and
  • Raj K. Bansal

Beilstein J. Org. Chem. 2023, 19, 1408–1442, doi:10.3762/bjoc.19.102

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  • , Me, C≡C-n-hep, Ph, CO2Me) and trialkylaluminum (alkyl = Me, Et, iBu) were used for the reactions. This approach is particularly attractive for asymmetric conjugate additions to pentenones, which are otherwise difficult to accomplish. 2.2.3 Reaction with organoboron reagents: In 2010, Hoveyda and co
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Published 20 Sep 2023

Asymmetric tandem conjugate addition and reaction with carbocations on acylimidazole Michael acceptors

  • Brigita Mudráková,
  • Renata Marcia de Figueiredo,
  • Jean-Marc Campagne and
  • Radovan Šebesta

Beilstein J. Org. Chem. 2023, 19, 881–888, doi:10.3762/bjoc.19.65

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  • organoboron reagents were realized [12]. Also, in terms of suitable Michael acceptors as substrates, unsaturated ketones, aldehydes, esters, thioesters, amides, alkenyl heterocycles and enoyl heterocycles became viable for conjugate additions. The maturity and robustness of this methodology is documented by
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Published 16 Jun 2023

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

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  • organoboron coupling partners, Wu and co-workers [91] reported a protocol for the Cu-catalyzed C–H arylation of pyridine N-oxides 9 with arylboronic esters 114 and prepared C2-arylated pyridines 115 in moderate to good yields (Scheme 22). By using an inexpensive Cu catalyst, the method allows for the simple
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Published 12 Jun 2023

Enolates ambushed – asymmetric tandem conjugate addition and subsequent enolate trapping with conventional and less traditional electrophiles

  • Péter Kisszékelyi and
  • Radovan Šebesta

Beilstein J. Org. Chem. 2023, 19, 593–634, doi:10.3762/bjoc.19.44

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  • formylation products. The methodology was later exploited in the expedient synthesis of the Taxol core (Scheme 34) [71]. Tandem conjugate borylations and silylations Chiral organoboron compounds are well-known synthetic building blocks with diverse possibilities for subsequent derivatization (e.g., oxidation
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Published 04 May 2023

Group 13 exchange and transborylation in catalysis

  • Dominic R. Willcox and
  • Stephen P. Thomas

Beilstein J. Org. Chem. 2023, 19, 325–348, doi:10.3762/bjoc.19.28

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  • by σ-bond metathesis, a redox neutral process (Scheme 1). Stoichiometric group 13 exchange reactions are key to the synthesis of group 13 reagents including in organoboron chemistry [11][12][13][14][15][16][17][18][19][20][21][22][23][24][25][26][27][28], and more recently with aluminium [29][30][31
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Published 21 Mar 2023

Peptide stapling by late-stage Suzuki–Miyaura cross-coupling

  • Hendrik Gruß,
  • Rebecca C. Feiner,
  • Ridhiwan Mseya,
  • David C. Schröder,
  • Michał Jewgiński,
  • Kristian M. Müller,
  • Rafał Latajka,
  • Antoine Marion and
  • Norbert Sewald

Beilstein J. Org. Chem. 2022, 18, 1–12, doi:10.3762/bjoc.18.1

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  • by side chain cross-linking of bromotryptophan and an organoboron moiety. Bromotryptophans are accessible by enzymatic bromination utilising cross-linked enzyme aggregates (combiCLEAs) containing an FAD-dependent tryptophan halogenase, a flavin reductase and an alcohol dehydrogenase [73][74]. For
  • organoboron containing side chain in the i + 4-position. The peptides were synthesised on Rink amide resin by solid-phase peptide synthesis (SPPS) with Fmoc/t-Bu strategy followed by on-resin SMC. For the cross-coupling, a modified protocol by Planas and co-workers was used [78]. Pd2(dba)3 was employed as the
  • only generated with 7-aryl-Trp staple. C) On-resin modification of amines (n = 1: Dab, n = 2: Orn, n = 3: Lys) in i + 4 position to obtain organoboron side chains with increased linker flexibility. Reaction conditions: (a) Pd(PPh3)4, morpholine in DCM, 2 × 20 min; (b) carboxylic acid, HATU, DIEA in DMF
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Published 03 Jan 2022

Ligand-dependent stereoselective Suzuki–Miyaura cross-coupling reactions of β-enamido triflates

  • Tomáš Chvojka,
  • Athanasios Markos,
  • Svatava Voltrová,
  • Radek Pohl and
  • Petr Beier

Beilstein J. Org. Chem. 2021, 17, 2657–2662, doi:10.3762/bjoc.17.179

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  • of cytotoxic, antifungal, or antibiotic properties [10][11][12]. Modern stereoselective syntheses leading to highly substituted enamides include cross-coupling of vinyl (pseudo)halides or organoboron compounds [13], hydroamidation of alkynes [14][15][16], ynamide functionalization [17][18][19], or
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Published 29 Oct 2021

Recent advances in palladium-catalysed asymmetric 1,4–additions of arylboronic acids to conjugated enones and chromones

  • Jan Bartáček,
  • Jan Svoboda,
  • Martin Kocúrik,
  • Jaroslav Pochobradský,
  • Alexander Čegan,
  • Miloš Sedlák and
  • Jiří Váňa

Beilstein J. Org. Chem. 2021, 17, 1048–1085, doi:10.3762/bjoc.17.84

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  • above (Scheme 1) [34]. Both presented methods were used in the synthesis of an antimuscarinic drug (R)-tolterodine (Scheme 2) [3]. A plausible catalytic cycle has been proposed (Scheme 3). The usual cross-coupling of an organoboron to Pd(0) requires a base. In the case of Pd(II) this reaction smoothly
  • organoboron reagents to enones [3][26][35]. Enantioselective β-arylation of cyclohexanone [38]. Application of L2/Pd(OAc)2 in the total synthesis of terpenes [8]. Plausible catalytic cycle for the addition of phenylboronic acid to 2-cyclohexenone catalysed by L3/Pd(dba)2 [40]. Microwave-assisted addition of
  • ][65][66][67]. Flowchart for the selection of the proper catalytic system. First example of asymmetric addition of organoboron reagents to cyclic enones [32][33]. Addition of arylboronic acids to enones accelerated by silver salts [34][35]. Synthesis of chromenes by the 1,4-addition of boronic acids to
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Published 10 May 2021

Application of the Meerwein reaction of 1,4-benzoquinone to a metal-free synthesis of benzofuropyridine analogues

  • Rashmi Singh,
  • Tomas Horsten,
  • Rashmi Prakash,
  • Swapan Dey and
  • Wim Dehaen

Beilstein J. Org. Chem. 2021, 17, 977–982, doi:10.3762/bjoc.17.79

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  • -radical mechanism [29]. Similar reaction intermediates can be prepared using precursors such as organoboron reagents [30]. However, due to the accessibility, aryldiazonium salts are the reagents of choice. They can be prepared starting from the commercially available corresponding anilines. The present
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Published 30 Apr 2021

Chan–Evans–Lam N1-(het)arylation and N1-alkеnylation of 4-fluoroalkylpyrimidin-2(1H)-ones

  • Viktor M. Tkachuk,
  • Oleh O. Lukianov,
  • Mykhailo V. Vovk,
  • Isabelle Gillaizeau and
  • Volodymyr A. Sukach

Beilstein J. Org. Chem. 2020, 16, 2304–2313, doi:10.3762/bjoc.16.191

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  • an organoboron component, instead of the conventionally used boronic acids. Among the newly-synthesized compounds are the first representatives of N1-(het)aryl-4-fluoroalkylpyrimidin-2(1H)-ones as well as their synthetically promising N1-alkеnyl-substituted analogues. The success of the reaction has
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Published 17 Sep 2020

Recent advances in Cu-catalyzed C(sp3)–Si and C(sp3)–B bond formation

  • Balaram S. Takale,
  • Ruchita R. Thakore,
  • Elham Etemadi-Davan and
  • Bruce H. Lipshutz

Beilstein J. Org. Chem. 2020, 16, 691–737, doi:10.3762/bjoc.16.67

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  • reactions are discussed. Keywords: C–B bonds; copper catalysis; C–Si bonds; enantioselective reactions; sp3 carbon functionalization; Introduction Transition-metal-catalyzed silylation and borylation are useful transformations [1], widely studied because organosilicon [2][3] and organoboron compounds [4
  • organosilicon [17][18][19][20] and organoboron [21][22][23][24] compounds (i.e., C(sp3)–Si and C(sp3)–B). Nonetheless, considering the extent of their use and their increasing popularity in the pharmaceutical industry, as well as the significant growth in the development of Cu-catalyzed processes applied to
  • bond formation Organoboron compounds are widely used in C–C and C–X (X = N, O) bond constructions. Straightforward methods for their synthesis involve the copper-catalyzed addition of organoboron compounds to alkynes, alkenes, and unsaturated carbonyl compounds, as well as the nucleophilic borylation
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Published 15 Apr 2020

Allylic cross-coupling using aromatic aldehydes as α-alkoxyalkyl anions

  • Akihiro Yuasa,
  • Kazunori Nagao and
  • Hirohisa Ohmiya

Beilstein J. Org. Chem. 2020, 16, 185–189, doi:10.3762/bjoc.16.21

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  • , agrochemicals and bioactive natural products. Generally, α-alkoxyalkyl anions are presynthesized as stoichiometric organometallic reagents such as organolithium, organozinc, organocuprate, organostannane, organosilane and organoboron compounds [1][2][3][4][5][6]. Alternatively, we showed that easily available
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Published 07 Feb 2020

Arylisoquinoline-derived organoboron dyes with a triaryl skeleton show dual fluorescence

  • Vânia F. Pais,
  • Tristan Neumann,
  • Ignacio Vayá,
  • M. Consuelo Jiménez,
  • Abel Ros and
  • Uwe Pischel

Beilstein J. Org. Chem. 2019, 15, 2612–2622, doi:10.3762/bjoc.15.254

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  • ratiometric response by the build-up of a hypsochromically shifted emission signal. Keywords: anions; dyes; fluorescence; laser-flash photolysis; organoboron; Introduction Boron-containing tri- and tetra-coordinated chromophores have attracted considerable interest due to their often peculiar and highly
  • advantageous photophysical properties that include spectrally tunable and highly intense fluorescence [1][2]. On the one hand, those compounds that contain the boron atom in a valence-saturated situation corresponding to sp3 hybridization (such as Bodipy dyes [3][4], N,C-chelate organoboron dyes [5][6][7][8][9
  • , we extended our previously reported arylisoquinoline-derived organoboron dye platform with an additional axially linked aryl residue (see structures 16–19 in Figure 1) in the expectation to modulate the fluorescence properties and fluoride response of these dyes. The additional aryl residues allow
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Published 04 Nov 2019

Borylation and rearrangement of alkynyloxiranes: a stereospecific route to substituted α-enynes

  • Ruben Pomar Fuentespina,
  • José Angel Garcia de la Cruz,
  • Gabriel Durin,
  • Victor Mamane,
  • Jean-Marc Weibel and
  • Patrick Pale

Beilstein J. Org. Chem. 2019, 15, 1416–1424, doi:10.3762/bjoc.15.141

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  • existence of at least one concerted step during the reaction mechanism. This step most probably corresponds to the group transfer in organoboron derivatives, as the stereoselectivity of such transfer has been demonstrated [32][33]. Regarding the oxiranyllithium stereochemical integrity and stability, it has
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Published 27 Jun 2019

Robust perfluorophenylboronic acid-catalyzed stereoselective synthesis of 2,3-unsaturated O-, C-, N- and S-linked glycosides

  • Madhu Babu Tatina,
  • Xia Mengxin,
  • Rao Peilin and
  • Zaher M. A. Judeh

Beilstein J. Org. Chem. 2019, 15, 1275–1280, doi:10.3762/bjoc.15.125

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  • desirable especially if such catalysts work well with a wide range of C-, O-, N- and S-nucleophiles under mild conditions. We also noted that the use of organocatalysts to catalyze the Ferrier rearrangement is scarcely reported. Recently, organoboron-catalysis emerged as a mild and effective strategy for
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Published 11 Jun 2019

Transition metal-free oxidative and deoxygenative C–H/C–Li cross-couplings of 2H-imidazole 1-oxides with carboranyl lithium as an efficient synthetic approach to azaheterocyclic carboranes

  • Lidia A. Smyshliaeva,
  • Mikhail V. Varaksin,
  • Pavel A. Slepukhin,
  • Oleg N. Chupakhin and
  • Valery N. Charushin

Beilstein J. Org. Chem. 2018, 14, 2618–2626, doi:10.3762/bjoc.14.240

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  • functional derivatives of carboranes, in particular heterocyclic ones, are undeniably of increased interest in the chemistry of organoboron compounds due to wide opportunities to use these boron-enriched substances as diagnostic tools for tumor radio imaging [4][5][6][7], promising agents for boron neutron
  • boron-enriched scaffold, is likely to be due to unique properties of these organoboron compounds and materials based on them. Results and Discussion 2H-Imidazole 1-oxides are known to be non-aromatic heterocyclic compounds, bearing the electrophilic center C(5)–H, which is active for interaction with
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Published 12 Oct 2018

Synergistic approach to polycycles through Suzuki–Miyaura cross coupling and metathesis as key steps

  • Sambasivarao Kotha,
  • Milind Meshram and
  • Chandravathi Chakkapalli

Beilstein J. Org. Chem. 2018, 14, 2468–2481, doi:10.3762/bjoc.14.223

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  • (SM) cross-coupling reaction is also considered as one of the most versatile methods for C–C bond formation [8][9][10][11][12]. Application of a wide range of organometallic reagents (e.g., organoboron reagents) are possible due to their commercial availability. Owing to the mild reaction conditions
  • and ease of handling of organoboron reagents [13][14][15][16][17] have propelled the growth of the SM cross coupling. A synergistic combination of these two elegant methods (i.e., SM coupling and metathesis) [18] was found to increase the synthetic efficiency of complex targets (e.g., macrocycles [19
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Published 21 Sep 2018

The chemistry and biology of mycolactones

  • Matthias Gehringer and
  • Karl-Heinz Altmann

Beilstein J. Org. Chem. 2017, 13, 1596–1660, doi:10.3762/bjoc.13.159

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Published 11 Aug 2017

Substitution of fluorine in M[C6F5BF3] with organolithium compounds: distinctions between O- and N-nucleophiles

  • Anton Yu. Shabalin,
  • Nicolay Yu. Adonin and
  • Vadim V. Bardin

Beilstein J. Org. Chem. 2017, 13, 703–713, doi:10.3762/bjoc.13.69

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  • of these salts to 16, 17, 18 and 19, respectively. The molar ratio of the produced polyfluoroarenes is the same as the ratio of their organoboron precursors (Scheme 5). The 19F NMR spectrum of 17 was described [34] and the spectrum of 16 is closely related to the spectrum of known compound 4 [33
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Published 12 Apr 2017

Conjugate addition–enantioselective protonation reactions

  • James P. Phelan and
  • Jonathan A. Ellman

Beilstein J. Org. Chem. 2016, 12, 1203–1228, doi:10.3762/bjoc.12.116

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  • dehydroaminophosphonates 169 (Scheme 40) [69]. α-Amino phosphonates 170 were obtained with high levels of enantioselectivity for electron-rich, neutral, and electron-poor aryltrifluoroborates 168. Electron-rich organoboron reagents (4-t-Bu, 4-MeO, and 3-MeO) gave slightly lower yields (51–77%) than the electron-poor
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Published 15 Jun 2016

Iridium/N-heterocyclic carbene-catalyzed C–H borylation of arenes by diisopropylaminoborane

  • Mamoru Tobisu,
  • Takuya Igarashi and
  • Naoto Chatani

Beilstein J. Org. Chem. 2016, 12, 654–661, doi:10.3762/bjoc.12.65

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  • ) complex bearing an ICy ligand was the most efficient catalyst. The initially formed aminoborylated products can readily be converted to the corresponding organoboron compounds bearing various boron-protecting groups. Experimental Procedure for the Ir-catalyzed borylation of heteroarenes using 1g In a
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Published 07 Apr 2016

Recent advances in copper-catalyzed asymmetric coupling reactions

  • Fengtao Zhou and
  • Qian Cai

Beilstein J. Org. Chem. 2015, 11, 2600–2615, doi:10.3762/bjoc.11.280

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  • [59] and Diéguez [60]. In this review, we focus on the developments since 2008. Cu-catalyzed enantioselective allylic substitutions with aryl-, alkenyl-, and allenylboronates, alkylboron compounds Organoboron compounds have found extensive application in coupling reactions for the construction of C–C
  • bonds [63]. Recently, the copper-catalyzed enantioselective allylic substitutions with organoboron compounds have seen impressive progress. In 2011, Hayashi et al. [64] developed a new efficient method for the highly regioselective and enantioselective construction of tertiary carbon stereocenters by
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Published 15 Dec 2015

Copper-catalyzed stereoselective conjugate addition of alkylboranes to alkynoates

  • Takamichi Wakamatsu,
  • Kazunori Nagao,
  • Hirohisa Ohmiya and
  • Masaya Sawamura

Beilstein J. Org. Chem. 2015, 11, 2444–2450, doi:10.3762/bjoc.11.265

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  • and their compatibility with a multitude of functional groups, organoboron compounds are especially popular organometallic reagents. Recently, Yamamoto and co-workers developed copper-catalyzed conjugate additions of aryl- and allylboron compounds to alkynoates [9][10], but alkylboron compounds have
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Published 04 Dec 2015

Chiral Cu(II)-catalyzed enantioselective β-borylation of α,β-unsaturated nitriles in water

  • Lei Zhu,
  • Taku Kitanosono,
  • Pengyu Xu and
  • Shū Kobayashi

Beilstein J. Org. Chem. 2015, 11, 2007–2011, doi:10.3762/bjoc.11.217

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  • the synthesis of biologically interesting compounds and of other materials. In particular, compounds with a nitrile group in the β-position with respect to the boron moiety represent an important subset of organoboron intermediates because these compounds contain two functional groups. Their C–B
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Published 27 Oct 2015
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