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Search for "carboxylation" in Full Text gives 51 result(s) in Beilstein Journal of Organic Chemistry.

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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  • carboxylation, C(sp2)–H alkenylation and allylation, C(sp2)–H arylation, C(sp2)–H amidation, and C(sp2)–H thiolation. Preceding the section of applications, a brief description of the structure of NHCs, nature of NHC–metal bond, and methods of preparation of NHC–Cu complexes is provided. Keywords: conjugate
  • and the use of a ketone was necessary to induce C–H functionalization selectivity in preference to C=C functionalization. The products were obtained in moderate to high yields (Scheme 67). 2.6 N–H and C(sp2)–H carboxylation The application of the [(IPr)CuOH] complex as catalyst for the N–H/C(sp2)–H
  • carboxylation of acidic arenes and heteroarenes has been reported by Cazin, Nolan and co-workers [90]. In this context, it was found that a combination of [(IPr)CuOH] (3 mol %) with CsOH in THF afforded the best results (Scheme 68), whereas the SIPr, IMes, and SIMes-based NHC–Cu complexes were found to be less
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Published 20 Sep 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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Published 28 Jul 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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  • ]. Through a series of single-turnover experiments a reaction mechanism was proposed where H-B-9-BBN catalysed the dehydrocoupling of carboxylic acids 47 with HBpin through B‒O/B‒H transborylation, to give the acyloxy boronic ester 49. This underwent direct defluoronative carboxylation with the alkyl
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Published 21 Mar 2023

Rhodium-catalyzed intramolecular reductive aldol-type cyclization: Application for the synthesis of a chiral necic acid lactone

  • Motoyuki Isoda,
  • Kazuyuki Sato,
  • Kenta Kameda,
  • Kana Wakabayashi,
  • Ryota Sato,
  • Hideki Minami,
  • Yukiko Karuo,
  • Atsushi Tarui,
  • Kentaro Kawai and
  • Masaaki Omote

Beilstein J. Org. Chem. 2022, 18, 1642–1648, doi:10.3762/bjoc.18.176

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  • formed the corresponding E-silylenolate via 1,4-reduction at 0 °C [46], even if the reaction was performed at −45 °C (Scheme 3). Also in relation to this result, Mikami and his group reported a rhodium-catalyzed carboxylation of alkenes or activated alkenes by using CO2 with Et2Zn, and a similar Rh–H
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Published 02 Dec 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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  • ) [22][23]. We also succeeded in generating N-acyliminium ions from N,N-dimethylformamide (DMF) used as a solvent in the electrochemical carboxylation of benzyl bromides. Electrolysis of benzyl bromides in DMF containing 0.1 M Bu4NBF4 and iPr2NEt (1 equiv) using an undivided cell equipped with a Pt
  • plate cathode and a Pt wire anode (a quasi-divided cell) [24][25][26][27][28] in the presence of carbon dioxide resulted in reductive carboxylation at the cathode and selective formation of N-acyliminium ions of DMF at the anode to produce coupling products, N-phenylacetoxymethyl-N-methylformamides, in
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Published 18 Aug 2022

Inductive heating and flow chemistry – a perfect synergy of emerging enabling technologies

  • Conrad Kuhwald,
  • Sibel Türkhan and
  • Andreas Kirschning

Beilstein J. Org. Chem. 2022, 18, 688–706, doi:10.3762/bjoc.18.70

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  • included a carboxylation and a Parham cyclization and hence a Grignard alkylation of ketone 82 using reagent 81. The resulting alcohol 83 was subjected to thermolysis that led to water elimination. This step proceeded in just 30 s by employing the inductive heating technique. The crude elimination product
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Published 20 Jun 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

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  • time, extremely fast molecular diffusion, and expelling the reaction product to avoid over-oxidation or over-reduction. We have previously reported the electrochemical carboxylation of several imines in a flow microreactor to afford the corresponding α-amino acids in good to moderate yields [33][34][35
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Published 29 Mar 2022

Photoredox catalysis in nickel-catalyzed C–H functionalization

  • Lusina Mantry,
  • Rajaram Maayuri,
  • Vikash Kumar and
  • Parthasarathy Gandeepan

Beilstein J. Org. Chem. 2021, 17, 2209–2259, doi:10.3762/bjoc.17.143

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  • reported by Liu and co-workers [130]. Here, stoichiometric quantities of quinuclidine were used to get optimal results. Carboxylation Over the past few decades, significant attention has been devoted to exploit carbon dioxide (CO2) as the C1 resource [131][132]. In particular, the C–H functionalization
  • with CO2 is considered an attractive organic synthesis strategy in terms of sustainable aspects [133][134][135]. In 2019, Murakami and co-workers reported on the photoinduced carboxylation of C(sp3)–H bonds with CO2 under 1 atm pressure [136]. Here, the authors discovered that the combination of
  • involving C(sp3)–H functionalizations, including arylation, alkylation, alkenylation, allylation, acylation, and carboxylation, highlights their potential utility in organic synthesis. Further, the mild nature of the reaction conditions enables a broad substrate scope, functional group tolerance, and
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Published 31 Aug 2021

Preparation of mono-substituted malonic acid half oxyesters (SMAHOs)

  • Tania Xavier,
  • Sylvie Condon,
  • Christophe Pichon,
  • Erwan Le Gall and
  • Marc Presset

Beilstein J. Org. Chem. 2021, 17, 2085–2094, doi:10.3762/bjoc.17.135

Graphical Abstract
  • [46][47][48], such as the α-carboxylation of an ester [49], the selective functionalization of a bromomalonate derivative [50], or the monoesterification of a malonic acid derivative [51][52][53]. However, even if the above-mentioned strategies appear obvious for the preparation of the simplest SMAHOs
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Published 18 Aug 2021

On the application of 3d metals for C–H activation toward bioactive compounds: The key step for the synthesis of silver bullets

  • Renato L. Carvalho,
  • Amanda S. de Miranda,
  • Mateus P. Nunes,
  • Roberto S. Gomes,
  • Guilherme A. M. Jardim and
  • Eufrânio N. da Silva Júnior

Beilstein J. Org. Chem. 2021, 17, 1849–1938, doi:10.3762/bjoc.17.126

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Published 30 Jul 2021

A comprehensive review of flow chemistry techniques tailored to the flavours and fragrances industries

  • Guido Gambacorta,
  • James S. Sharley and
  • Ian R. Baxendale

Beilstein J. Org. Chem. 2021, 17, 1181–1312, doi:10.3762/bjoc.17.90

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Published 18 May 2021

Synthesis of N-perfluoroalkyl-3,4-disubstituted pyrroles by rhodium-catalyzed transannulation of N-fluoroalkyl-1,2,3-triazoles with terminal alkynes

  • Olga Bakhanovich,
  • Viktor Khutorianskyi,
  • Vladimir Motornov and
  • Petr Beier

Beilstein J. Org. Chem. 2021, 17, 504–510, doi:10.3762/bjoc.17.44

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  • transannulation/carboxylation process was demonstrated for the construction of the functionalized pyrrole 2-carboxylic acid with an N-trifluoromethyl functionality. Thus, this work improves the synthetic access to N-perfluoroalkyl-3,4-disubstituted pyrroles. Selected pyrrole-containing natural products, drugs
  • carboxylation of in situ-prepared pyrrole 2a. Plausible mechanism for rhodium-catalyzed transannulation of N-perfluoroalkyl-1,2,3-triazoles with alkynes. Reaction conditions screening of the transannulation of triazole 1a with phenylacetylene. Supporting Information Supporting Information File 2: Experimental
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Published 18 Feb 2021

Syntheses of spliceostatins and thailanstatins: a review

  • William A. Donaldson

Beilstein J. Org. Chem. 2020, 16, 1991–2006, doi:10.3762/bjoc.16.166

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  • removal of the silyl protecting group, followed by a carboxylation and acylation gave 13. Koide’s group [13] reported a second-generation route to 13, which utilized the Corey–Bakshi–Shibata chiral oxazaborolidine catalyst 21 [20] for the asymmetric reduction of the THP-protected 5-hydroxy-3-pentyn-2-one
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Published 13 Aug 2020

Bacterial terpene biosynthesis: challenges and opportunities for pathway engineering

  • Eric J. N. Helfrich,
  • Geng-Min Lin,
  • Christopher A. Voigt and
  • Jon Clardy

Beilstein J. Org. Chem. 2019, 15, 2889–2906, doi:10.3762/bjoc.15.283

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  • examples of terpene modification by bacterial CYPs. a) Hydroxylation [89]. b) Carboxylation, hydroxylation, and ring contraction [41]. c) Ether formation [90]. d) Rearrangement [91]. Off-target effects observed during heterologous expression of terpenoid BGCs. Unexpected oxidation of 34b by an
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Published 29 Nov 2019

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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  • sequential reports, Feroci and Inesi discussed the electrochemical carboxylation of chiral α-bromocarboxylic acid derivatives 165 substituted with Evans-type chiral auxiliaries [96][97]. The cathodic reduction of the C–Br bond in presence of CO2 followed by treatment with diazomethane resulted in the
  • transformations, Feroci and Inesi developed a stereoselective carboxylation of cinnamic acid derivatives 171 substituted with chiral auxiliaries [99]. The substrate 171 was subjected to galvanostatic reduction under CO2 atmosphere in an undivided cell. Carboxylation followed by treatment with diazomethane
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Published 13 Nov 2019

Sigmatropic rearrangements of cyclopropenylcarbinol derivatives. Access to diversely substituted alkylidenecyclopropanes

  • Guillaume Ernouf,
  • Jean-Louis Brayer,
  • Christophe Meyer and
  • Janine Cossy

Beilstein J. Org. Chem. 2019, 15, 333–350, doi:10.3762/bjoc.15.29

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  • transformations include the carboxylation of a (trimethylsilylmethyl)cyclopropene in the presence of a fluoride promoter [22], and also the addition of electrophiles to (lithiomethyl)cyclopropenes generated by lithiation of the corresponding methylcyclopropenylsulfone [23] or -sulfoxide [24]. More recently, the
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Published 05 Feb 2019

Cobalt- and rhodium-catalyzed carboxylation using carbon dioxide as the C1 source

  • Tetsuaki Fujihara and
  • Yasushi Tsuji

Beilstein J. Org. Chem. 2018, 14, 2435–2460, doi:10.3762/bjoc.14.221

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  • review, the Co- and Rh-catalyzed transformation of CO2 via carbon–carbon bond-forming reactions is summarized. Combinations of metals (cobalt or rhodium), substrates, and reducing agents realize efficient carboxylation reactions using CO2. The carboxylation of propargyl acetates and alkenyl triflates
  • using cobalt complexes as well as the cobalt-catalyzed reductive carboxylation of α,β-unsaturated nitriles and carboxyamides in the presence of Et2Zn proceed. A Co complex has been demonstrated to act as an efficient catalyst in the carboxylation of allylic C(sp3)–H bonds. Employing zinc as the
  • reductant, carboxyzincation and the four-component coupling reaction between alkyne, acrylates, CO2, and zinc occur efficiently. Rh complexes also catalyze the carboxylation of arylboronic esters, C(sp2)–H carboxylation of aromatic compounds, and hydrocarboxylation of styrene derivatives. The Rh-catalyzed
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Published 19 Sep 2018

One hundred years of benzotropone chemistry

  • Arif Dastan,
  • Haydar Kilic and
  • Nurullah Saracoglu

Beilstein J. Org. Chem. 2018, 14, 1120–1180, doi:10.3762/bjoc.14.98

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Published 23 May 2018

Selective carboxylation of reactive benzylic C–H bonds by a hypervalent iodine(III)/inorganic bromide oxidation system

  • Toshifumi Dohi,
  • Shohei Ueda,
  • Kosuke Iwasaki,
  • Yusuke Tsunoda,
  • Koji Morimoto and
  • Yasuyuki Kita

Beilstein J. Org. Chem. 2018, 14, 1087–1094, doi:10.3762/bjoc.14.94

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  • benzylic C–H bonds under mild conditions. The unique radical species, generated by the homolytic cleavage of the labile I(III)–Br bond of the in situ-formed bromo-λ3-iodane, initiated benzylic carboxylation with a high degree of selectivity for the secondary benzylic position. Keywords: carboxylic acids
  • results of our extensive study and optimization of our radical C–H activation strategy for the intermolecular oxidative coupling between the benzylic secondary C–H bond and the O–H group of carboxylic acids (Scheme 1). Results and Discussion Benzylic C–H carboxylation can provide a convenient route to
  • initiated by the decomposition of PIFA to form the trifluoroacetoxy radical under visible light irradiation [50]. Our approach for the generation of radical species for the benzylic carboxylation using a hypervalent iodine reagent relies on the unique reactivity of the hypervalent iodine(III)–bromine bond
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Published 16 May 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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  • : 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
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Published 16 Apr 2018

Solid-state mechanochemical ω-functionalization of poly(ethylene glycol)

  • Michael Y. Malca,
  • Pierre-Olivier Ferko,
  • Tomislav Friščić and
  • Audrey Moores

Beilstein J. Org. Chem. 2017, 13, 1963–1968, doi:10.3762/bjoc.13.191

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  • PEG with tosyl, bromide, thiol, carboxylic acid or amine functionalities in good to quantitative yields and with no polymer chain oligomerization, proving the versatility of the method. Keywords: amination; bromination; carboxylation; mechanochemistry; poly(ethylene glycol); solid state; thiolation
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Published 18 Sep 2017

Phenylsilane as an effective desulfinylation reagent

  • Wanda H. Midura,
  • Aneta Rzewnicka and
  • Jerzy A. Krysiak

Beilstein J. Org. Chem. 2017, 13, 1513–1517, doi:10.3762/bjoc.13.150

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  • geminal position to the ester group, was subjected to a reaction with phenylsilane using the procedure described above. In this case, to our surprise, no alcohol was detected, but the desulfinylation process occurred exclusively. Cyclopropane 4 was formed by carboxylation of 3 with ethyl chloroformate as
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Published 01 Aug 2017

Nitration of 5,11-dihydroindolo[3,2-b]carbazoles and synthetic applications of their nitro-substituted derivatives

  • Roman A. Irgashev,
  • Nikita A. Kazin,
  • Gennady L. Rusinov and
  • Valery N. Charushin

Beilstein J. Org. Chem. 2017, 13, 1396–1406, doi:10.3762/bjoc.13.136

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  • nitrobenzenes with potassium cyanide as the procedure, affording the ortho-carboxylation of the benzene ring relative to the leaving nitro group and known as von Richter rearrangement [50]. At the same time, reduction of 9a with Na2S2O4, Sn(II) chloride or H2 and Pd (10 wt %) on charcoal catalyst has proved to
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Published 14 Jul 2017

Automating multistep flow synthesis: approach and challenges in integrating chemistry, machines and logic

  • Chinmay A. Shukla and
  • Amol A. Kulkarni

Beilstein J. Org. Chem. 2017, 13, 960–987, doi:10.3762/bjoc.13.97

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Published 19 May 2017

Synthesis of tetrasubstituted pyrazoles containing pyridinyl substituents

  • Josef Jansa,
  • Ramona Schmidt,
  • Ashenafi Damtew Mamuye,
  • Laura Castoldi,
  • Alexander Roller,
  • Vittorio Pace and
  • Wolfgang Holzer

Beilstein J. Org. Chem. 2017, 13, 895–902, doi:10.3762/bjoc.13.90

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  • out to be superior to the reaction of compounds 2 with N-iodosuccinimide. Species 3a–d served as educts for the investigations concerning further functionalization at pyrazole C-4. Carboxylation of 4-iodopyrazoles 3a–d The lithium–iodine exchange proceeded quickly and quantitatively in case of 3,5-di
  • amounts of dehalogenation products observed. The reactions were carried out either using 2 equivalents of commercially available RZnBr or 3 equivalents of in-situ-prepared RZnCl (see Supporting Information File 1). Similarly as observed in the course of the lithiation/carboxylation reactions (Scheme 3
  • –halogen exchange and subsequent carboxylation with iodopyrazoles 3a–d. Attempted cross-coupling reactions with 4-halopyrazoles 5 and 3a. Negishi couplings with 4-iodopyrazoles 3a,b. Formation of pyrazoloquinolizin-6-ium iodide 12 upon reaction of 3a with (phenylethynyl)zinc bromide. Prototropic
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Published 12 May 2017
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