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Search for "Selectfluor" in Full Text gives 45 result(s) in Beilstein Journal of Organic Chemistry.

Synthesis of 2,2-difluoro-1,3-diketone and 2,2-difluoro-1,3-ketoester derivatives using fluorine gas

  • Alexander S. Hampton,
  • David R. W. Hodgson,
  • Graham McDougald,
  • Linhua Wang and
  • Graham Sandford

Beilstein J. Org. Chem. 2024, 20, 460–469, doi:10.3762/bjoc.20.41

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  • agents offers an alternative fluorination route, for example, the reactions of MeCN solutions of 1,3-diketones with electrophilic fluorinating agents such as Selectfluor eventually give the corresponding 2,2-difluoro-1,3-diketone derivatives [12]. Monofluorination of the 1,3-diketone substrates is rapid
  • , but the second fluorination step occurs only after reaction for several days. In the solid phase, mechanical milling of the diketone substrate with solid Selectfluor in the presence of sodium carbonate [13][14], and reaction of ketones with a strong base and an N–F reagent give rise to the
  • corresponding 2,2-difluoroketones [15]. In related kinetic studies concerning the electrophilic 2-fluorination of 1,3-diketones with Selectfluor [16][17], we demonstrated that the rate-determining step for difluorination was enolization of the intermediate 2-fluoro-1,3-diketone. Monofluorination of 1,3
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Published 28 Feb 2024

Green and sustainable approaches for the Friedel–Crafts reaction between aldehydes and indoles

  • Periklis X. Kolagkis,
  • Eirini M. Galathri and
  • Christoforos G. Kokotos

Beilstein J. Org. Chem. 2024, 20, 379–426, doi:10.3762/bjoc.20.36

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Published 22 Feb 2024

Copper-promoted C5-selective bromination of 8-aminoquinoline amides with alkyl bromides

  • Changdong Shao,
  • Chen Ma,
  • Li Li,
  • Jingyi Liu,
  • Yanan Shen,
  • Chen Chen,
  • Qionglin Yang,
  • Tianyi Xu,
  • Zhengsong Hu,
  • Yuhe Kan and
  • Tingting Zhang

Beilstein J. Org. Chem. 2024, 20, 155–161, doi:10.3762/bjoc.20.14

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  • bromine source in combination with Selectfluor® (Scheme 1, reaction 3) [29]. Despite significant progress in this area, most of these methodologies still suffer from the use of external oxidants, complex reaction equipment, and expensive and/or toxic halogen sources, which limit the practicality for large
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Published 23 Jan 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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  • conditions, without transition metal catalysts, added oxidants, or strong acids involved, using Selectfluor (1-(chloromethyl)-4-fluoro-1,4-diazabicyclo[2.2.2]octane-1,4-diium ditetrafluoroborate) as essential additive [73]. With regard to the reaction medium, the idea of replacing classic organic solvents
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Published 28 Dec 2023

Non-noble metal-catalyzed cross-dehydrogenation coupling (CDC) involving ether α-C(sp3)–H to construct C–C bonds

  • Hui Yu and
  • Feng Xu

Beilstein J. Org. Chem. 2023, 19, 1259–1288, doi:10.3762/bjoc.19.94

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  • . In recent years, a Ag-catalyzed cross-dehydrogenative coupling of aromatic C(sp2)–H bonds with ethers has also been developed. In 2018, Wang et al. reported that the AgNO3-promoted CDC of quinaldine (183) with ethers afforded alkylated quinoline derivatives in the presence of selectfluor as a mild
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Published 06 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

Transition-metal-catalyzed C–H bond activation as a sustainable strategy for the synthesis of fluorinated molecules: an overview

  • Louis Monsigny,
  • Floriane Doche and
  • Tatiana Besset

Beilstein J. Org. Chem. 2023, 19, 448–473, doi:10.3762/bjoc.19.35

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  • year, the group of Huang reported an elegant and straightforward palladium(II)-catalyzed ortho-selective trifluoromethylthiolation of arenes bearing various directing groups using the nucleophilic trifluoromethylthiolating source AgSCF3 in combination with Selectfluor® as oxidant (Scheme 6, 29 examples
  • (KIE = 2.7). Subsequently palladacycle C is oxidized by Selectfluor® to form a palladium(IV) complex D. After a ligand exchange with AgSCF3, the intermediate E is obtained, which, after reductive elimination, releases the desired product 12 and regenerates the catalyst. Alternatively, a ligand exchange
  • with AgSCF3 occurs before the oxidation step, generating the palladium(II) complex F. After an oxidative addition in the presence of Selectfluor®, the palladium(IV) intermediate E is generated. Finally, after reductive elimination step, the desired product 12 is released and the catalyst regenerated
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Published 17 Apr 2023

Multi-faceted reactivity of N-fluorobenzenesulfonimide (NFSI) under mechanochemical conditions: fluorination, fluorodemethylation, sulfonylation, and amidation reactions

  • José G. Hernández,
  • Karen J. Ardila-Fierro,
  • Dajana Barišić and
  • Hervé Geneste

Beilstein J. Org. Chem. 2022, 18, 182–189, doi:10.3762/bjoc.18.20

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  • complemented mechanochemical fluorinations carried out with other reagents, such as AgF [16], 1-chloromethyl-4-fluoro-1,4-diazoniabicyclo[2.2.2]octane bis(tetrafluoroborate) (Selectfluor®) [17][18][19][20], among other fluorinating reagents [21]. However, as shown above, examples using NFSI by mechanochemistry
  • example through the reaction of product 2c with the second equivalent of NFSI. In solution, 1,3,5-trimethoxybenzene (1c) has been reported to undergo fluorodemethylation when reacted with Selectfluor®, however the authors mentioned that “the fate of the methyl group lost in the conversion” of 2c to 2c
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Published 07 Feb 2022

A novel methodology for the efficient synthesis of 3-monohalooxindoles by acidolysis of 3-phosphate-substituted oxindoles with haloid acids

  • Li Liu,
  • Yue Li,
  • Tiao Huang,
  • Dulin Kong and
  • Mingshu Wu

Beilstein J. Org. Chem. 2021, 17, 2321–2328, doi:10.3762/bjoc.17.150

Graphical Abstract
  • -monohalooxindoles involve the direct halogenation of oxindoles with various reactive halogenating reagents, including N-chloro-N-methoxybenzenesulfonamide [24][25], ammonium halides/oxone [13], Selectfluor® [26][27], and CuBr2 (Scheme 1, reaction 4) [15]. However, these protocols each have a certain scope and
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Published 07 Sep 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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  • also been reported for the direct C(sp3)–H fluorination. Chen and co-workers [94] described a fluorination method employing Selectfluor as fluorine source and the commercially available V2O3 to give fluorine-containing compounds under mild conditions and with moderate to good yields (Scheme 10B,C). The
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Published 30 Jul 2021

Development of N-F fluorinating agents and their fluorinations: Historical perspective

  • Teruo Umemoto,
  • Yuhao Yang and
  • Gerald B. Hammond

Beilstein J. Org. Chem. 2021, 17, 1752–1813, doi:10.3762/bjoc.17.123

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  • , Grignard reagents, and aromatic compounds under mild conditions. In each case Selectfluor gave the corresponding fluorinated products in good to high yields (Scheme 34). As can be seen in Figure 3 and Figure 4, two years later (1994), Banks et al. reported mono- and difluorinations of various 1,3
  • -dicarbonyl compounds using Selectfluor (16-3a) [61]. In 1995, the same group reported that Selectfluor reacted with quinuclidine to form N-fluoroquinuclidinium tetrafluoroborate in quantitative yield [62] (Scheme 35). They described this as a “transfer fluorination” since there was an intermolecular transfer
  • of the fluorine atom of Selectfluor to the nitrogen of quinuclidine. In 1996, full details were published on the reactivities of all 16-3 reagents and the syntheses of 16-3 and intermediates 16-2 including additionally C2H5 and C8H17 as R group and PF6− and FSO3− as anion X− [63][64]. The generous
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Published 27 Jul 2021

Manganese/bipyridine-catalyzed non-directed C(sp3)–H bromination using NBS and TMSN3

  • Kumar Sneh,
  • Takeru Torigoe and
  • Yoichiro Kuninobu

Beilstein J. Org. Chem. 2021, 17, 885–890, doi:10.3762/bjoc.17.74

Graphical Abstract
  • introduced bromine atom can be converted into other functional groups. The reaction of 2a with selectfluor in MeCN at 25 °C for 12 h gave fluorinated product 3 in 86% yield (Scheme 4, top) [50]. Allylated product 4 was obtained in 64% yield upon treating 2a with allyltributylstannane in the presence of a
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Published 22 Apr 2021

Silver-catalyzed synthesis of β-fluorovinylphosphonates by phosphonofluorination of aromatic alkynes

  • Yajing Zhang,
  • Qingshan Tian,
  • Guozhu Zhang and
  • Dayong Zhang

Beilstein J. Org. Chem. 2020, 16, 3086–3092, doi:10.3762/bjoc.16.258

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  • 200032, P. R. China 10.3762/bjoc.16.258 Abstract A silver-catalyzed three-component reaction involving alkynes, Selectfluor®, and diethyl phosphite was employed for the one-pot formation of C(sp2)–F and C(sp2)–P bonds to provide an efficient access to β-fluorovinylphosphonates in a highly regio- and
  • others concerning the silver-catalyzed phosphonofluorination of alkenes [24][25][26], we herein present a general silver-catalyzed regio- and stereoselective phosphonofluorination of alkynes using Selectfluor® and phosphonates as reactants (Scheme 1). This new silver-catalyzed approach to fluorinated
  • vinylphosphonates from simple and commercially available alkynes proceeds under mild conditions with high stereoselectivity, and thus enabling the rapid construction of molecular complexity. Results and Discussion We investigated the reaction of phenylacetylene (1a), Selectfluor®, and diethyl phosphite to afford β
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Published 18 Dec 2020

Photosensitized direct C–H fluorination and trifluoromethylation in organic synthesis

  • Shahboz Yakubov and
  • Joshua P. Barham

Beilstein J. Org. Chem. 2020, 16, 2151–2192, doi:10.3762/bjoc.16.183

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  • -fluorosaccharinsultam. The most recent discovery of an advanced electrophilic fluorinating agent was Selectfluor® (1-chloromethyl-4-fluoro-1,4-diazoniabicyclo[2.2.2]octane bis(tetrafluoroborate)) [190]. Selectfluor® [190][191] is a nonhygroscopic, crystalline solid, stable at temperatures up to 195 °C, nonhazardous
  • [192], reliable and commercially available [193]. Selectfluor® is synthesized on a multiton p.a. scale in a simple and efficient method (Scheme 3) [193]. The precursor 24 is prepared by alkylation of DABCO (1,4-diazabicyclo[2.2.2]octane) with DCM. A counterion exchange with NaBF4 causes NaCl
  • precipitation in MeCN, and the fluorination with F2 in the presence of sodium tetrafluoroborate affords Selectfluor®. Moreover, by variation of these conditions, different derivatives of Selectfluor® (e.g., a methyl derivative: Selectfluor® II and a 2,2,2-trifluoroethyl derivative) with different physical
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Published 03 Sep 2020

Controlling the stereochemistry in 2-oxo-aldehyde-derived Ugi adducts through the cinchona alkaloid-promoted electrophilic fluorination

  • Yuqing Wang,
  • Gaigai Wang,
  • Anatoly A. Peshkov,
  • Ruwei Yao,
  • Muhammad Hasan,
  • Manzoor Zaman,
  • Chao Liu,
  • Stepan Kashtanov,
  • Olga P. Pereshivko and
  • Vsevolod A. Peshkov

Beilstein J. Org. Chem. 2020, 16, 1963–1973, doi:10.3762/bjoc.16.163

Graphical Abstract
  • desired fluorinated product 12a. Thus, according to this synthetic and mechanistic path, the N-fluorocinchona intermediate acted as an asymmetric electrophilic fluorinating agent. Conducting the fluorination of 8a with a quinine (Q)/Selectfluor combination in different solvents revealed chloroform as a
  • the analogous reactions with Selectfluor. Having these results in hand, we moved to investigating the scope and limitation of this procedure with the Ugi adducts 8 obtained previously (Table 4). In order to have a more balanced representation we decided to test most of these substrates 8 with eight
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Published 11 Aug 2020

Fluorohydration of alkynes via I(I)/I(III) catalysis

  • Jessica Neufeld,
  • Constantin G. Daniliuc and
  • Ryan Gilmour

Beilstein J. Org. Chem. 2020, 16, 1627–1635, doi:10.3762/bjoc.16.135

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  • Selectfluor® and amine/HF mixtures, the formation of protected α-fluoroketones from simple alkynes was realised. Whilst the transient p-TolIF2 species generated in situ productively engaged with pentynyl benzoate scaffolds to generate the desired α-fluoroketone motif, augmentation or contraction of the linker
  • fluorinating reagents [44][45]. Developments by Hammond and Xu validated N-pyridine oxides as terminal oxidants to substitute Selectfluor® for the cationic Au(I)/Au(III) cycle, thereby enabling high functional group tolerance [46][47][48][49]. Inspired by these and other selected advances [50][51], in metal
  • -based fluorination, a complementary organocatalytic variant [52], based on an I(I)/I(III) catalysis platform was explored (Figure 1C). It was envisaged that the in situ generation of p-TolIF2 via oxidation of p-TolI with Selectfluor® in the presence of an amine/HF complex might enable the title
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Published 10 Jul 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

Synthesis of new fluorescent molecules having an aggregation-induced emission property derived from 4-fluoroisoxazoles

  • Kazuyuki Sato,
  • Akira Kawasaki,
  • Yukiko Karuo,
  • Atsushi Tarui,
  • Kentaro Kawai and
  • Masaaki Omote

Beilstein J. Org. Chem. 2020, 16, 1411–1417, doi:10.3762/bjoc.16.117

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  • desired fluorinated analog 9b. However, in the synthesis of F-BKIs through the selective fluorination of the corresponding BKIs, the use of 1 equiv of Selectfluor did not give any product and performing the reaction with excess amounts of Selectfluor gave rise to the corresponding α,α-difluorinated
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Published 22 Jun 2020

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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  • isoxazolines 70 was realized [116] by the oxidation of oximes 69 by the Selectfluor/Bu4NI system (Scheme 25). A radical mechanism was proposed in which the hypoiodite formed from the oxime undergoes a homolytic cleavage of the O–I bond with the formation of the iminoxyl radical. As a rule, R1 is an aromatic
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Published 05 Jun 2020

Fluorinated phenylalanines: synthesis and pharmaceutical applications

  • Laila F. Awad and
  • Mohammed Salah Ayoup

Beilstein J. Org. Chem. 2020, 16, 1022–1050, doi:10.3762/bjoc.16.91

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  • ] (Scheme 33). 2.7. Photocatalyzed benzylic fluorination of N-phthalimido phenylalanine The photocatalyzed benzylic fluorination of phthalimide-protected phenylalanine methyl ester 145, using the photosensitizer 1,2,4,5-tetracyanobenzene (TCB), and Selectfluor in acetonitrile was carried out using a pen
  • LED light source (365 nm) and Selectfluor in MeCN [72]. Alternatively, a visible light (14 Watt CFL) mediated benzylic fluorination of a series of N- and C-terminally protected phenylalanines 147 using Selectfluor and dibenzosuberenone in acetonitrile, afforded the β-fluorophenylalanine derivatives
  • diastereoisomeric purity (dr > 99:1) (Scheme 38). 2.9. Direct fluorination of β-methylene C(sp3)−H The direct fluorination of β-methylene C(sp3)−H bonds of Phe derivatives 157a–v having installed the bidentate auxiliary, 2-(pyridine-2-yl)isopropylamine (PIP-amine) 158, was attempted using Selectfluor in the
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Published 15 May 2020

Recent advances in transition-metal-catalyzed incorporation of fluorine-containing groups

  • Xiaowei Li,
  • Xiaolin Shi,
  • Xiangqian Li and
  • Dayong Shi

Beilstein J. Org. Chem. 2019, 15, 2213–2270, doi:10.3762/bjoc.15.218

Graphical Abstract
  • intermediate B through the C–H bond-activation process. Oxidative addition of the intermediate B with Selectfluor affords the palladium(IV) species C, followed by reductive elimination and ligand dissociation to give the final product. Similar to these publications in strategy and products, in the same year
  • has been proposed. First, a bis(terpyridyl)Pd(II) complex B is oxidized by Selectfluor with turnover-limiting to obtain Pd(III) C and a Selectfluor radical cation. Then, a transfer of a F· radical from the Selectfluor radical cation to an aryl trifluoroborate occurs, forming the C−F bond and producing
  • formed from A with Selectfluor or NFSI instead of an organometallic intermediate as usual. Then, the activated Pd(IV)–F electrophile B would be capable of electrophilic fluorination of weakly nucleophilic arenes. This unusual mechanism of catalysis may provide a new idea to the catalysis of C–H
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Published 23 Sep 2019

Oxidative radical ring-opening/cyclization of cyclopropane derivatives

  • Yu Liu,
  • Qiao-Lin Wang,
  • Zan Chen,
  • Cong-Shan Zhou,
  • Bi-Quan Xiong,
  • Pan-Liang Zhang,
  • Chang-An Yang and
  • Quan Zhou

Beilstein J. Org. Chem. 2019, 15, 256–278, doi:10.3762/bjoc.15.23

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  • cyclopropanols 91 with Selectfluor to construct β-fluorinated ketones 114 (Scheme 25). In Loh’s work, the Fe(III)- or Ag(I)-catalyzed oxidative ring-opening and fluorination of cyclopropanols 91 via radical rearrangement is disclosed. Notably, this reaction proceeds at room temperature and tolerates a diverse
  • cyclopropanols 91 with Selectfluor under mild and simple conditions (Scheme 26) [106]. It is worth mentioning that a number of electronically and sterically diverse β-fluorinated carbonyl-containing compounds 114 and γ-fluoro alcohols 115 could be prepared through this method. In 2015, Duan and co-workers
  • trifluoromethylation/trifluoromethylthiolation of cyclopropanols. Ag(I)-mediated oxidative ring-opening/fluorination of cyclopropanols with Selectfluor. Photocatalyzed ring-opening/fluorination of cyclopropanols with Selectfluor. Na2S2O8-promoted ring-opening/alkynylation of cyclopropanols with EBX. Ag(I)-catalyzed
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Published 28 Jan 2019
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  • reduction conditions, alkene 3a was transformed to isobutyl p-methoxybenzoate (4a) in 86% yield (entry 1, Table 1). Inspired by the methods of Boger [12] and Hiroya [13], a number of fluorination reagents were examined to achieve hydrofluorination. Although no product was observed using SelectFluor
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Published 28 Aug 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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  • result was obtained by replacing PhI(OAc)2 with PhI. In addition, phosphates were suitable nucleophiles in this reaction, giving phosphoryloxylactones in good yields [44]. A similar catalytic cyclization of unsaturated amides leading to oxazolines and dihydrooxazines was developed, in which Selectfluor
  • afford the diacetoxylation products in moderate yields and enantioselectivity when using Selectfluor as a terminal oxidant (Scheme 6). Diamination of alkenes The diamination of alkenes is attractive due to the significance of diamino moieties in diverse fields of the biomedicinal and pharmaceutical
  • iodotoluene [27]. Based on this seminal work, Gilmour and co-workers reported a catalytic difluorination of alkenes using an inexpensive p-iodotoluene as the catalyst and Selectfluor as the terminal oxidant [63]. Terminal olefins proved to be viable substrates for this reaction. It is worth noting that the
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Published 18 Jul 2018

Fluorocyclisation via I(I)/I(III) catalysis: a concise route to fluorinated oxazolines

  • Felix Scheidt,
  • Christian Thiehoff,
  • Gülay Yilmaz,
  • Stephanie Meyer,
  • Constantin G. Daniliuc,
  • Gerald Kehr and
  • Ryan Gilmour

Beilstein J. Org. Chem. 2018, 14, 1021–1027, doi:10.3762/bjoc.14.88

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  • fluorooxygenation of readily accessible N-allylcarboxamides via an I(I)/I(III) manifold to generate 2-oxazolines containing a fluoromethyl group. Catalysis is conditional on the oxidation competence of Selectfluor®, whilst HF serves as both a fluoride source and Brønsted acid activator. The C(sp3)–F bond of the
  • enable this transformation [28][29]. Employing Selectfluor® as the terminal oxidant, it was possible to generate p-TolIF2 in situ from p-iodotoluene and an inexpensive HF source [30][31][32][33][34][35]. This strategy proved to be mild and general, smoothly converting terminal olefins to the
  • DCE (0.2 mol·L−1) with 20 mol % catalyst loading, and using Selectfluor® as the oxidant. An initial reaction screen, based on the conditions reported for our vicinal difluorination study [9], began with an exploration of the effect of amine/HF ratio. This was deemed prudent due to the perceived
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Published 09 May 2018
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