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Search for "large-scale synthesis" in Full Text gives 61 result(s) in Beilstein Journal of Organic Chemistry.

Copper-catalyzed multicomponent reaction of β-trifluoromethyl β-diazo esters enabling the synthesis of β-trifluoromethyl N,N-diacyl-β-amino esters

  • Youlong Du,
  • Haibo Mei,
  • Ata Makarem,
  • Ramin Javahershenas,
  • Vadim A. Soloshonok and
  • Jianlin Han

Beilstein J. Org. Chem. 2024, 20, 212–219, doi:10.3762/bjoc.20.21

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  • -catalyzed conditions has been developed, which affords various unsymmetrical β-trifluoromethyl N,N-diacyl-β-amino esters in good to excellent yields. The reaction features mild conditions, a wide scope of β-amino esters and carboxylic acids, and also applicability to large-scale synthesis, thus providing an
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Published 02 Feb 2024

Construction of diazepine-containing spiroindolines via annulation reaction of α-halogenated N-acylhydrazones and isatin-derived MBH carbonates

  • Xing Liu,
  • Wenjing Shi,
  • Jing Sun and
  • Chao-Guo Yan

Beilstein J. Org. Chem. 2023, 19, 1923–1932, doi:10.3762/bjoc.19.143

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  • expected spiro product 7c was successfully obtained in 70% yield, which clearly demonstrated that this base-promoted annulation reaction is applicable for the large-scale synthesis of diazepine-containing spiroindolines. Conclusion In summary, we have developed a synthetic protocol for the base-mediated
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Published 18 Dec 2023

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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  • first efforts in this direction [32][33]. Finally, both techniques are amenable to large-scale synthesis and ideally integrated with state-of-the-art reactor technology platforms, such as continuous flow reactors and high throughput screening plates. Various examples of scalability will be highlighted
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Published 28 Jul 2023

Strategies in the synthesis of dibenzo[b,f]heteropines

  • David I. H. Maier,
  • Barend C. B. Bezuidenhoudt and
  • Charlene Marais

Beilstein J. Org. Chem. 2023, 19, 700–718, doi:10.3762/bjoc.19.51

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  • 1a in poor yield (20–50%) [39]. The starting material 2a was distilled through a heated (≈150 °C) column packed with Pd/C and glass wool. Crude 1a was collected as a solid and purified. Further research has been conducted on the effect of catalyst choice and composition for large scale synthesis
  • 6.2.1 Double bond functionalisation: Singh et al. [56] developed a large-scale synthesis of methoxyiminostilbene 151, a precursor to the antidepressant oxcarbazepine (153). Bromination of acetyl-protected 1a by 1,3-dibromo-5,5-dimethylhydantoin (DBDMH) in methanol gives the bromohydrin ether 150 in
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Published 22 May 2023

Continuous flow synthesis of 6-monoamino-6-monodeoxy-β-cyclodextrin

  • János Máté Orosz,
  • Dóra Ujj,
  • Petr Kasal,
  • Gábor Benkovics and
  • Erika Bálint

Beilstein J. Org. Chem. 2023, 19, 294–302, doi:10.3762/bjoc.19.25

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  • derivatives. This complexation creates difficulties in the purification process, which consists mostly of precipitation from acetone or ion-exchange column chromatography. The price of the reagent needs to be also considered in the case of an attempted large-scale synthesis. The second most used method is the
  • after the reaction is complete. Hydrazine hydrate can also be used as a hydrogen source instead of gaseous H2, as described by Jicsinszky and Iványi [14], although this method is not so widespread and has limited potential for a large-scale synthesis. As a special feature, the protocol published by
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Published 09 Mar 2023

Heterogeneous metallaphotoredox catalysis in a continuous-flow packed-bed reactor

  • Wei-Hsin Hsu,
  • Susanne Reischauer,
  • Peter H. Seeberger,
  • Bartholomäus Pieber and
  • Dario Cambié

Beilstein J. Org. Chem. 2022, 18, 1123–1130, doi:10.3762/bjoc.18.115

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  • point for applications in large-scale synthesis or automated reaction optimization. Based on literature precedents on catalyst leaching in packed-bed reactors [37][38], we assumed that the decreased activity could be linked to nickel leaching. Based on ICP results on the reactor outlet collected in the
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Published 29 Aug 2022

Electrochemical formal homocoupling of sec-alcohols

  • Kosuke Yamamoto,
  • Kazuhisa Arita,
  • Masashi Shiota,
  • Masami Kuriyama and
  • Osamu Onomura

Beilstein J. Org. Chem. 2022, 18, 1062–1069, doi:10.3762/bjoc.18.108

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  • -valent metal reductants, such as Al, Ti, V, Zn, and Sm (Scheme 1a). Although these protocols have proven to be a reliable strategy to access vic-1,2-diols, producing a large amount of metal waste may be a major drawback especially in a large-scale synthesis. Thus, the improved procedures using a
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Published 22 Aug 2022

Automated grindstone chemistry: a simple and facile way for PEG-assisted stoichiometry-controlled halogenation of phenols and anilines using N-halosuccinimides

  • Dharmendra Das,
  • Akhil A. Bhosle,
  • Amrita Chatterjee and
  • Mainak Banerjee

Beilstein J. Org. Chem. 2022, 18, 999–1008, doi:10.3762/bjoc.18.100

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  • potential application of the new protocol in large-scale synthesis with adequate grinding equipment. Lastly, a comparative study of available methods for N-halosuccinimide-aided electrophilic halogenations with our auto-grinding protocol was conducted (Table S2 in Supporting Information File 1). It
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Published 09 Aug 2022

Continuous flow synthesis of azobenzenes via Baeyer–Mills reaction

  • Jan H. Griwatz,
  • Anne Kunz and
  • Hermann A. Wegner

Beilstein J. Org. Chem. 2022, 18, 781–787, doi:10.3762/bjoc.18.78

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  • the large-scale synthesis both, aniline 2t as well as nitrosobenzene (3), were dissolved in acetic acid and, as described before, pumped through the flow setup (Figure 3). Every 12 h, the organic phase was separated from the aqueous phase, dried over MgSO4, and the solvent was subsequently removed
  • azobenzenes were prepared in yields up to >99%. Furthermore, the setup was demonstrated to be applicable for a large-scale synthesis, where azobenzene 1t was obtained in 72 g within 3 days without the need of further purification. With this process a large number of non-symmetric substituted azobenzenes can
  • a wavelength of 254 nm (see Supporting Information File 1 for details). Flow setup after prior optimization with unsubstituted aniline (2a) and nitrosobenzene (3) to AB (1a). Baeyer–Mills reaction of AB (1a) involving nucleophilic attack of aniline (2a) to nitrosobenzene (3). Large-scale synthesis
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Published 30 Jun 2022

DDQ in mechanochemical C–N coupling reactions

  • Shyamal Kanti Bera,
  • Rosalin Bhanja and
  • Prasenjit Mal

Beilstein J. Org. Chem. 2022, 18, 639–646, doi:10.3762/bjoc.18.64

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  • reaction, we have performed the large-scale synthesis under the solvent-free (ball milling) conditions as shown in Figure 6. In this context, milling of the substrate (E)-N-(2-((4-bromobenzylidene)amino)phenyl)-4-methylbenzenesulfonamide (1c, 2.795 mmol) in the presence of 1.2 equiv of DDQ delivered 1.098
  • g (92%) of the cyclized product 2-(4-bromophenyl)-1-tosyl-1H-benzo[d]imidazole (2c). Similarly, we also carried out the large-scale synthesis with 4.04 mmol each of anthranilamide and 4-bromobenzaldehyde (4), which produced 1.16 g (95%) of the desired product 2-(4-bromophenyl)quinazolin-4(3H)-one
  • substituted benzimidazoles. Synthesis of quinazolin-4(3H)-one derivatives. The substrate scope for the synthesis of quinazolin-4(3H)-one derivatives. a) Control experiment and b) Plausible mechanism. Large-scale synthesis. a) 1,2-Disubstituted benzimidazoles. b) Substituted quinazolin-4(3H)-ones. Reaction
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Published 01 Jun 2022

A two-phase bromination process using tetraalkylammonium hydroxide for the practical synthesis of α-bromolactones from lactones

  • Yuki Yamamoto,
  • Akihiro Tabuchi,
  • Kazumi Hosono,
  • Takanori Ochi,
  • Kento Yamazaki,
  • Shintaro Kodama,
  • Akihiro Nomoto and
  • Akiya Ogawa

Beilstein J. Org. Chem. 2021, 17, 2906–2914, doi:10.3762/bjoc.17.198

Graphical Abstract
  • -bromolactones in excellent yields. The use of methyl ethyl ketone (MEK) in the two-phase system led to an eco-friendly system amenable to large-scale synthesis. Furthermore, the α-bromolactones generated in situ by this method were transformed into functional molecules, such as α-thiolated lactones, in good
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Published 09 Dec 2021

Exfoliated black phosphorous-mediated CuAAC chemistry for organic and macromolecular synthesis under white LED and near-IR irradiation

  • Azra Kocaarslan,
  • Zafer Eroglu,
  • Önder Metin and
  • Yusuf Yagci

Beilstein J. Org. Chem. 2021, 17, 2477–2487, doi:10.3762/bjoc.17.164

Graphical Abstract
  • photocatalysts have been successfully applied in both small- and large-scale synthesis such as organic reactions [16][17], free radical polymerization (FRP) [18][19][20], controlled radical polymerization (CRP) [21][22], CuAAC chemistry [23][24][25], and thiol–ene chemistry [26][27]. However, most of the
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Published 23 Sep 2021

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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  • often requires relatively high catalyst loadings, directing groups, high reaction temperatures (100–160 °C), stoichiometric additives, or oxidants such as peroxide or silver salts that can be undesirable for large scale synthesis. Recently, photoredox dual catalysis has witnessed significant
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Published 31 Aug 2021

Facile and innovative catalytic protocol for intramolecular Friedel–Crafts cyclization of Morita–Baylis–Hillman adducts: Synergistic combination of chiral (salen)chromium(III)/BF3·OEt2 catalysis

  • Karthikeyan Soundararajan,
  • Helen Ratna Monica Jeyarajan,
  • Raju Subimol Kamarajapurathu and
  • Karthik Krishna Kumar Ayyanoth

Beilstein J. Org. Chem. 2021, 17, 2186–2193, doi:10.3762/bjoc.17.140

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  • standard reaction conditions. Convincingly MBH adduct 5h (10 mmol) delivered the desired product 6h in 73% yield (1.28 g). The outcome of this practical scale synthesis demonstrates the synthetic utility of the stabilized reaction for large scale synthesis. The structure of the synthesised indene compounds
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Published 26 Aug 2021

Iodine-catalyzed electrophilic substitution of indoles: Synthesis of (un)symmetrical diindolylmethanes with a quaternary carbon center

  • Thanigaimalai Pillaiyar,
  • Masoud Sedaghati,
  • Andhika B. Mahardhika,
  • Lukas L. Wendt and
  • Christa E. Müller

Beilstein J. Org. Chem. 2021, 17, 1464–1475, doi:10.3762/bjoc.17.102

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  • was indeed essential for the alkylation of indoles. We further investigated the new method’s feasibility for large-scale synthesis (Figure 4). Thus, 2,2,2-trifluoro-1-(5-methoxy-1H-indol-3-yl)-1-phenylethan-1-ol (1a, 1.0 g, 3.10 mmol) and 2,2,3,3,3-pentafluoro-1-(5-methoxy-1H-indol-3-yl)-1
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Published 18 Jun 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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  • acetone. The combined flow stream was subsequently quenched after 15 seconds by a downstream inlet of aqueous HCl afforded the products 36–40. Significantly higher yields were obtained for 36 and 37 compared to batch and the methodology developed was later applied to a large-scale synthesis of pristane
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Published 18 May 2021

N-tert-Butanesulfinyl imines in the asymmetric synthesis of nitrogen-containing heterocycles

  • Joseane A. Mendes,
  • Paulo R. R. Costa,
  • Miguel Yus,
  • Francisco Foubelo and
  • Camilla D. Buarque

Beilstein J. Org. Chem. 2021, 17, 1096–1140, doi:10.3762/bjoc.17.86

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Published 12 May 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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  • ]. In 2018, Wang et al. applied the optimised reaction conditions for the synthesis of various compounds that could be potentially usable for the treatment of cystic fibrosis (Scheme 10) [5]. The large-scale synthesis (>130 g) of the most successful hit was later published by Greszler et al. (Scheme 11
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Published 10 May 2021

Asymmetric Mannich reactions of (S)-N-tert-butylsulfinyl-3,3,3-trifluoroacetaldimines with yne nucleophiles

  • Ziyi Li,
  • Li Wang,
  • Yunqi Huang,
  • Haibo Mei,
  • Hiroyuki Konno,
  • Hiroki Moriwaki,
  • Vadim A. Soloshonok and
  • Jianlin Han

Beilstein J. Org. Chem. 2020, 16, 2671–2678, doi:10.3762/bjoc.16.217

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  • reproducibility of this method for large-scale synthesis (Scheme 3) and the removal of the sulfinyl auxiliary to give the free amine (Scheme 4). To our delight, 1.4 g of the desired product 3a was obtained when the amount of sulfinylimine 1 was raised to 1.0 g (5.0 mmol). Comparing with reaction of 0.3 mmol scale
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Published 29 Oct 2020

Access to highly substituted oxazoles by the reaction of α-azidochalcone with potassium thiocyanate

  • Mysore Bhyrappa Harisha,
  • Pandi Dhanalakshmi,
  • Rajendran Suresh,
  • Raju Ranjith Kumar and
  • Shanmugam Muthusubramanian

Beilstein J. Org. Chem. 2020, 16, 2108–2118, doi:10.3762/bjoc.16.178

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  • ) using ethyl acetate/petroleum ether mixture to afford product 4. Examples of biologically active oxazole and aminothiazole scaffolds. Large-scale synthesis of 3i. a) At the start of the reaction, b) after the reaction. ORTEP diagram of compound 5. X-ray crystal structure of 4h. Strategies for the
  • ), potassium persulfate (0.5 mmol) in acetonitrile (2 mL) for 6 h. Yields refer to pure products after recrystallization. Large-scale synthesis of 3i. Acetyl derivative of 3d. Synthesis of S-methyl/benzylated products 6 and 7. Control experiments. Plausible mechanism proposed for the formation of 2,4,5
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Published 31 Aug 2020

Facile synthesis of 7-alkyl-1,2,3,4-tetrahydro-1,8-naphthyridines as arginine mimetics using a Horner–Wadsworth–Emmons-based approach

  • Rhys A. Lippa,
  • John A. Murphy and
  • Tim N. Barrett

Beilstein J. Org. Chem. 2020, 16, 1617–1626, doi:10.3762/bjoc.16.134

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  • limited functional group tolerance and limited regiochemical control, which presents considerable purification issues during large-scale synthesis [8][9][10]. More recently, catalytic methodologies for the asymmetric hydrogenation of 1,8-naphythyridines have been reported [11][12]. Recently
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Published 08 Jul 2020

Reaction of indoles with aromatic fluoromethyl ketones: an efficient synthesis of trifluoromethyl(indolyl)phenylmethanols using K2CO3/n-Bu4PBr in water

  • Thanigaimalai Pillaiyar,
  • Masoud Sedaghati and
  • Gregor Schnakenburg

Beilstein J. Org. Chem. 2020, 16, 778–790, doi:10.3762/bjoc.16.71

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  • desired products were obtained in good to excellent yields without requiring a column chromatographic purification. The reusability of the catalytic system and large-scale synthesis of indolyl(phenyl)methanols, which would further transform into biological active indole-derived compounds, are further
  • advantages of this protocol. Keywords: C–C-bond formation; C3-funtionalization of indole; diindolylmethane; Friedel–Crafts reaction; indole; indole-3-carbinol; large-scale synthesis; recyclability; Introduction (1H-Indol-3-yl)methanols have emerged as versatile pre-electrophiles for C–C functionalization
  • the catalytic system and large-scale synthesis of products, which would further transform into biologically active indole-derived compounds, are further advantages of this protocol. Structures of trifluoromethylated compounds and their biological activities. Synthetic approaches toward
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Published 20 Apr 2020

Safe and highly efficient adaptation of potentially explosive azide chemistry involved in the synthesis of Tamiflu using continuous-flow technology

  • Cloudius R. Sagandira and
  • Paul Watts

Beilstein J. Org. Chem. 2019, 15, 2577–2589, doi:10.3762/bjoc.15.251

Graphical Abstract
  • have been developed towards Tamiflu to date [1][2][3]. However, most of these synthetic approaches suffer from the use of potentially hazardous azide chemistry, thus raising safety concerns [4] and eventually ruled out for large scale synthesis in batch systems [1][2]. The importance and use of azide
  • 1a is a potentially explosive compound because of its nitro and azide moieties [14] and its safety concerns need to be dealt with for large scale synthesis. Safety in this reaction was achieved by in situ formation and consumption in flow of the hazardous intermediates (azide 1a and isocyanate 1b
  • large scale synthesis in batch systems on the basis of safety concerns poised by the use of the potentially explosive azide chemistry and other hazardous chemistry. Therefore, problems inherent in scale-up are effectively eliminated or reduced, making microreactor technology a viable tool in the
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Published 30 Oct 2019

Thermal stability of N-heterocycle-stabilized iodanes – a systematic investigation

  • Andreas Boelke,
  • Yulia A. Vlasenko,
  • Mekhman S. Yusubov,
  • Boris J. Nachtsheim and
  • Pavel S. Postnikov

Beilstein J. Org. Chem. 2019, 15, 2311–2318, doi:10.3762/bjoc.15.223

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  • with a significant higher reactivity. However, pyrazole 6 still shows a good reactivity in this model reaction with a concurrent outstanding thermal stability. If safety issues are a major concern, for example on a very large-scale synthesis, NHIs 6 or 12 should be the first choices. Except of 15 and 9
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Published 27 Sep 2019
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