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Search for "phase-transfer catalyst" in Full Text gives 56 result(s) in Beilstein Journal of Organic Chemistry.

Advancements in hydrochlorination of alkenes

  • Daniel S. Müller

Beilstein J. Org. Chem. 2024, 20, 787–814, doi:10.3762/bjoc.20.72

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  • hydrochlorination report [73]. Although seemingly unbelievable, the reasons for this delayed progress will become apparent in the subsequent discussion. Rolla introduced a noteworthy enhancement by incorporating 10 mol % of tributylhexadecylphosphonium bromide (TBHDPB; CAS: 14937-45-2) as a phase-transfer catalyst
  • , yielding 4 with 90% yield and 99% conversion. A drawback of the Rolla protocol is the cost associated with the phase-transfer catalyst, and that the crude mixture requires purification through distillation or column chromatography. Another inconvenience is the high reaction temperature which limits the
  • . The acridinium ion 161 now takes on the additional role of a phase-transfer catalyst, facilitating the transport of the chloride ion into the lipophilic alkene phase. Subsequently, under irradiation with blue LEDs, the acridinium cation 161 and the chloride anion engage in a single-electron-transfer
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Published 15 Apr 2024

Synthesis of ether lipids: natural compounds and analogues

  • Marco Antônio G. B. Gomes,
  • Alicia Bauduin,
  • Chloé Le Roux,
  • Romain Fouinneteau,
  • Wilfried Berthe,
  • Mathieu Berchel,
  • Hélène Couthon and
  • Paul-Alain Jaffrès

Beilstein J. Org. Chem. 2023, 19, 1299–1369, doi:10.3762/bjoc.19.96

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Published 08 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
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  • -workers demonstrated an enantioselective aza-Friedel–Crafts reaction between indoles 4 and isatin-derived ketimines 49. A chiral phase transfer catalyst O3 derived from urea assisted this organic transformation featuring a C3–H bond functionalization of indoles. Different protecting groups for the imine
  • benzothiazolimines. Thiourea-catalyzed reaction between β-naphthol and isatin-derived ketamine. Quinine-derived molecule as catalyst. Cinchona alkaloid as catalyst. aza-Friedel–Crafts reaction by phase transfer catalyst. Disulfonamide-catalyzed reaction. Heterogenous thiourea-catalyzed aza-Friedel–Crafts reaction
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Published 28 Jun 2023

Transition-metal-catalyzed domino reactions of strained bicyclic alkenes

  • Austin Pounder,
  • Eric Neufeld,
  • Peter Myler and
  • William Tam

Beilstein J. Org. Chem. 2023, 19, 487–540, doi:10.3762/bjoc.19.38

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Published 24 Apr 2023

Inline purification in continuous flow synthesis – opportunities and challenges

  • Jorge García-Lacuna and
  • Marcus Baumann

Beilstein J. Org. Chem. 2022, 18, 1720–1740, doi:10.3762/bjoc.18.182

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  • of alcohols using a phase transfer catalyst (PTC) [55]. In a scale-up run, a three-stage counter-current cascade was used downstream of the first separation to remove the PTC (Scheme 4). In this scenario more than 90% of the phase transfer catalyst was separated from the phase containing the desired
  • system for purifications of an immobilized enzyme-based reaction. Redrawn from [54]. Countercurrent L–L purification using large Zaiput membranes in the presence of a phase transfer catalyst (PTC). Redrawn from [55]. General scheme of a telescoped flow process using L–L separators. Example of phase
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Perspective
Published 16 Dec 2022

Preparation of β-cyclodextrin-based dimers with selectively methylated rims and their use for solubilization of tetracene

  • Konstantin Lebedinskiy,
  • Volodymyr Lobaz and
  • Jindřich Jindřich

Beilstein J. Org. Chem. 2022, 18, 1596–1606, doi:10.3762/bjoc.18.170

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  • undermethylated products regardless of the reaction time or the amount of methyl iodide added. In the literature [25], this problem is solved by using methyltriphenylphosphine bromide as a phase-transfer catalyst, and it has also worked in our reaction. Refluxing in NH4F methanol solution was chosen to cleave the
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Published 25 Nov 2022

Menadione: a platform and a target to valuable compounds synthesis

  • Acácio S. de Souza,
  • Ruan Carlos B. Ribeiro,
  • Dora C. S. Costa,
  • Fernanda P. Pauli,
  • David R. Pinho,
  • Matheus G. de Moraes,
  • Fernando de C. da Silva,
  • Luana da S. M. Forezi and
  • Vitor F. Ferreira

Beilstein J. Org. Chem. 2022, 18, 381–419, doi:10.3762/bjoc.18.43

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  • ) [102]. Another interesting approach to menadione epoxidation is the use of a phase-transfer catalyst (PTC). Ooi and co-workers studied the epoxidation of menadione (10) and other carbonylated substrates using tetrabutylammonium bromide (TBAB) as catalyst and the optimized reaction conditions involved
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Published 11 Apr 2022

Recent advances in organocatalytic asymmetric aza-Michael reactions of amines and amides

  • Pratibha Sharma,
  • Raakhi Gupta and
  • Raj K. Bansal

Beilstein J. Org. Chem. 2021, 17, 2585–2610, doi:10.3762/bjoc.17.173

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  • cinchona alkaloid-derived quaternary ammonium salts (cat. 55) as the phase-transfer catalyst. The products were obtained in high yields (53–93%) with high enantioselectivities (40–76% ee) (Table 12) [46]. Lebrun et al. developed a new method to synthesize optically active isoindolinones via asymmetric
  • synthesis of dihydro-β-carbolines. Asymmetric aza-Michael synthesis of N-substituted 2-pyridones. Asymmetric aza-Michael–Henry cascade reaction. Asymmetric aza-Michael addition for the formation of (S)-(−)-pyrazoline. Asymmetric aza-Michael addition reaction catalyzed by phase-transfer catalyst. Asymmetric
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Published 18 Oct 2021

Base-free enantioselective SN2 alkylation of 2-oxindoles via bifunctional phase-transfer catalysis

  • Mili Litvajova,
  • Emiliano Sorrentino,
  • Brendan Twamley and
  • Stephen J. Connon

Beilstein J. Org. Chem. 2021, 17, 2287–2294, doi:10.3762/bjoc.17.146

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  • reactive centre dramatically increases the acidity at this position and, in preliminary studies, we found that under biphasic basic conditions 2-oxindole 5 was undergoing alkylation also in the absence of a phase-transfer catalyst (not ideal when designing a catalytic enantioselective process). Despite
  • investigating the effects of different solvents, bases and buffer systems, in preliminary experiments we were not able to prevent the non-catalysed benzylation of substrate 5; nevertheless, the enantioselective alkylation of 5 with benzyl bromide in the presence of a phase-transfer catalyst was attempted. This
  • product was not observed in the absence of a phase-transfer catalyst after a prolonged reaction time of 504 hours (see Supporting Information File 1). With this new set of conditions in hand, a rational catalyst design process commenced, aimed at improving the selectivity of the base-free SN2 alkylation
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Published 02 Sep 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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Published 27 Jul 2021

Beyond ribose and phosphate: Selected nucleic acid modifications for structure–function investigations and therapeutic applications

  • Christopher Liczner,
  • Kieran Duke,
  • Gabrielle Juneau,
  • Martin Egli and
  • Christopher J. Wilds

Beilstein J. Org. Chem. 2021, 17, 908–931, doi:10.3762/bjoc.17.76

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  • 3'-OH with an acetyl group gave the fully protected intermediate [211]. Treatment of this intermediate with m-CPBA in the presence of a phase-transfer catalyst in acidic medium gave the resulting 5'-OH compound [211]. The authors reported no transfer of the 2'-TBDMS group onto the 5'-OH, however
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Published 28 Apr 2021

Synthetic reactions driven by electron-donor–acceptor (EDA) complexes

  • Zhonglie Yang,
  • Yutong Liu,
  • Kun Cao,
  • Xiaobin Zhang,
  • Hezhong Jiang and
  • Jiahong Li

Beilstein J. Org. Chem. 2021, 17, 771–799, doi:10.3762/bjoc.17.67

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  • ] designed a reaction, with indanone derivatives 65 and perfluorohexyl iodide (66) as substrates and a phase-transfer catalyst (PTC) to give perfluoroalkylation product 67 under white-light irradiation (Scheme 23). A variety of electron-withdrawing substituents on the aromatic ring of 65 were well tolerated
  • ; however, the presence of electron-donating substituents lowered the reactivity due to a negative impact on the EDA complex formation and led to a low yield. It is worth noting that the phase-transfer catalyst employed in this experiment is a suitable donor for the photosensitive EDA complex while at the
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Published 06 Apr 2021

The preparation and properties of 1,1-difluorocyclopropane derivatives

  • Kymbat S. Adekenova,
  • Peter B. Wyatt and
  • Sergazy M. Adekenov

Beilstein J. Org. Chem. 2021, 17, 245–272, doi:10.3762/bjoc.17.25

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  • and chloroform in an aqueous 40% NaOH solution using the phase-transfer catalyst benzyltriethylammonium chloride (Scheme 28) [70][71]. Although difluorocarbene is not involved in the cyclopropanation step, this approach does employ dichlorocarbene. 1.4 Transformation of functional groups gem
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Published 26 Jan 2021

Convenient access to pyrrolidin-3-ylphosphonic acids and tetrahydro-2H-pyran-3-ylphosphonates with multiple contiguous stereocenters from nonracemic adducts of a Ni(II)-catalyzed Michael reaction

  • Alexander N. Reznikov,
  • Dmitry S. Nikerov,
  • Anastasiya E. Sibiryakova,
  • Victor B. Rybakov,
  • Evgeniy V. Golovin and
  • Yuri N. Klimochkin

Beilstein J. Org. Chem. 2020, 16, 2073–2079, doi:10.3762/bjoc.16.174

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  • to get the best yield (Table 1, entry 9). Lower yields and dr values for compound 13a were obtained when 18-crown-6 was used as the phase-transfer catalyst (Table 1, entries 10–12). With the optimized reaction conditions in hand, the transformation was studied with a series of phosphonates and
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Published 25 Aug 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

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  • 96:4), but low dr (up to 66:33) (Scheme 40) [90]. Another relevant example has been described by Meng and co-workers with the synthesis of α-hydroxy-β-keto esters using TPP, a visible-light source, and a phase-transfer catalyst (PTC) as enantio-catalyst [91]. They reported the preparation of indanone
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Published 06 May 2020

Preparation of 2-phospholene oxides by the isomerization of 3-phospholene oxides

  • Péter Bagi,
  • Réka Herbay,
  • Nikolett Péczka,
  • Zoltán Mucsi,
  • István Timári and
  • György Keglevich

Beilstein J. Org. Chem. 2020, 16, 818–832, doi:10.3762/bjoc.16.75

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  • as a model compound for the alkyl derivatives. The isomerization of these two model compounds (1a and 1h) was tested in the presence of several inorganic bases, such as Na2CO3, K2CO3, Cs2CO3, NaOH and NaOEt in toluene, DMF or DMSO, with or without a phase transfer catalyst. The results indicated that
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Published 22 Apr 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

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  • radical precursor N-hydroxyphthalimide (NHPI), an anionic phase-transfer catalyst (KB(C6F5)4), and a Cu(I)-bisimine complex, to give the corresponding monofluorinated product (Scheme 25). One year later, Weng and co-workers [68] synthesized and characterized a new copper(I) fluoride complex ligated by a
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Published 23 Sep 2019

A heteroditopic macrocycle as organocatalytic nanoreactor for pyrroloacridinone synthesis in water

  • Piyali Sarkar,
  • Sayan Sarkar and
  • Pradyut Ghosh

Beilstein J. Org. Chem. 2019, 15, 1505–1514, doi:10.3762/bjoc.15.152

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  • the product was detected when the reaction was carried out in ethanol/water 1:1 (Table 1, entry 12). Even when repeating the reaction in the presence of the phase-transfer catalyst, poly(ethylene glycol) (PEG) no mentionable yield of product was observed (Table 1, entries 13 and 14). The subsequent
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Published 08 Jul 2019

Unnatural α-amino ethyl esters from diethyl malonate or ethyl β-bromo-α-hydroxyiminocarboxylate

  • Eloi P. Coutant,
  • Vincent Hervin,
  • Glwadys Gagnot,
  • Candice Ford,
  • Racha Baatallah and
  • Yves L. Janin

Beilstein J. Org. Chem. 2018, 14, 2853–2860, doi:10.3762/bjoc.14.264

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  • phase transfer catalyst. For instance, (note b in Table 2), stirring a 1:1.1 proportion of compounds 47 and 48af, sodium carbonate, and 0.01 equiv tetrabutylammonium bromide in toluene for 1.5 hours led to a 42% yield of the α-hydroxyimino ester 2af. On the other hand, such catalysis was not required
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Published 16 Nov 2018

A novel and practical asymmetric synthesis of eptazocine hydrobromide

  • Ruipeng Li,
  • Zhenren Liu,
  • Liang Chen,
  • Jing Pan,
  • Kuaile Lin and
  • Weicheng Zhou

Beilstein J. Org. Chem. 2018, 14, 2340–2347, doi:10.3762/bjoc.14.209

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  • in the presence of catalyst PTC (3). The designed synthesis is shown in Scheme 3. Two key reactions are included in this novel strategy: 1. the enantioselective alkylation of 1-methyl-7-methoxy-2-tetralone (2) with chloroacetonitrile generate 4 through the use of a phase-transfer catalyst; and 2. the
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Published 06 Sep 2018

A general and atom-efficient continuous-flow approach to prepare amines, amides and imines via reactive N-chloramines

  • Katherine E. Jolley,
  • Michael R. Chapman and
  • A. John Blacker

Beilstein J. Org. Chem. 2018, 14, 2220–2228, doi:10.3762/bjoc.14.196

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  • phase-transfer catalyst was recently reported [25]. We have published a communication that describes the continuous mixing of aqueous NaOCl and an organic solution of secondary amine, using either a tubular reactor with in-line static mixers or a single stage CSTR [26]. The reactor was selected to
  • procedure is not straightforward, requiring multiple unit operations. To avoid this, a phase-transfer catalyst (TBAB) was used along with NaOH (Table 4, entries 7–9). This reagent, in a toluene/water mixture, promoted full conversion to imine 19 (Table 4, entry 8). The separation of the toluene phase
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Published 24 Aug 2018

Recent applications of chiral calixarenes in asymmetric catalysis

  • Mustafa Durmaz,
  • Erkan Halay and
  • Selahattin Bozkurt

Beilstein J. Org. Chem. 2018, 14, 1389–1412, doi:10.3762/bjoc.14.117

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  • asymmetric phase-transfer catalysis based on inherently chiral calix[4]arenes, although the asymmetric induction observed remained moderate. Su et al. demonstrated a new approach for the design of a chiral binary integrative phase-transfer catalyst consisting of p-tert-butylcalix[4]arene and a cinchonine
  • ammonium salt [38] (Scheme 2). Due to the failure of obtaining monobromo p-tert-butylcalix[4]arene derivative 6 directly from p-tert-butylcalix[4]arene using 1,2-dibromoethane in the presence of several bases, the synthetic route to calixarene-based chiral phase-transfer catalyst 7 comprises a four-step
  • sequence including protection/deprotection steps for the benzyl groups. The catalytic efficiency of calix[4]arene-based phase-transfer catalyst 7 was evaluated in the benchmark reaction (Scheme 3) and compared with that of the chiral quaternary ammonium salt 8. The results obtained when 7 used as
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Published 08 Jun 2018

A survey of chiral hypervalent iodine reagents in asymmetric synthesis

  • Soumen Ghosh,
  • Suman Pradhan and
  • Indranil Chatterjee

Beilstein J. Org. Chem. 2018, 14, 1244–1262, doi:10.3762/bjoc.14.107

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  • catalyzed by a phase-transfer catalyst [74]. Their previous findings on the same reaction using a Cinchona-based phase-transfer catalyst [75] was further improved by using Maruoka’s binaphthyl-derived ammonium salt 110. The formation of intermediate 112 (chiral catalyst still attached to the substrate) from
  • oxylation of ketones reported by Masson et al. α-Fluorination of β-keto esters. Alkynylation of β-ketoesters and amides catalyzed by phase-transfer catalyst. Alkynylation of β-ketoesters and dearomative alkynylation of phenols. Acknowledgements The authors highly acknowledge the financial assistance
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Published 30 May 2018

Bromide-assisted chemoselective Heck reaction of 3-bromoindazoles under high-speed ball-milling conditions: synthesis of axitinib

  • Jingbo Yu,
  • Zikun Hong,
  • Xinjie Yang,
  • Yu Jiang,
  • Zhijiang Jiang and
  • Weike Su

Beilstein J. Org. Chem. 2018, 14, 786–795, doi:10.3762/bjoc.14.66

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  • . Currently, the Heck reaction is usually carried out by adding an excess of phase-transfer catalyst such as tetrabutylammonium bromide (TBAB) or tetrabutylammonium iodide (TBAI) to increase the reaction yield under both solvent-heating [19][20][21][22][23] and solvent-free conditions [24][25][26][27
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Published 06 Apr 2018
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