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Search for "asymmetric hydrogenation" in Full Text gives 25 result(s) in Beilstein Journal of Organic Chemistry.

Chiral phosphoric acid-catalyzed transfer hydrogenation of 3,3-difluoro-3H-indoles

  • Yumei Wang,
  • Guangzhu Wang,
  • Yanping Zhu and
  • Kaiwu Dong

Beilstein J. Org. Chem. 2024, 20, 205–211, doi:10.3762/bjoc.20.20

Graphical Abstract
  • -catalyzed asymmetric hydrogenation of indoles to synthesize chiral indolines has been widely studied (Scheme 1a) [21][22]. Representative examples include Ir- or Ru-catalyzed asymmetric hydrogenation of 2,3,3-trisubstituted 3H-indole [23][24]. Generally, these methods employ precious metals and/or
  • relatively strict reaction conditions (up to 150 bar H2). In 2022, Liu’s group reported an asymmetric hydrogenation of 3H-indoles catalyzed by a chiral Mn complex, which showed good yield and enantioselectivity [25]. In addition to metal catalysis for the enantioselective reduction, asymmetric
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Published 01 Feb 2024

Strategies for the synthesis of brevipolides

  • Yudhi D. Kurniawan and
  • A'liyatur Rosyidah

Beilstein J. Org. Chem. 2021, 17, 2399–2416, doi:10.3762/bjoc.17.157

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  • ) asymmetric dihydroxylation and epoxidation; 3) asymmetric hydrogenation; 4) Horner–Wadsworth–Emmons olefination; and 5) cyclopropanation, which are summarized in Table 4, including the overall yields and the number of steps required. This work is expected to provide useful information for researchers to
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Published 14 Sep 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

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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Published 26 Jan 2021

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

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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  • -catalyzed asymmetric hydrogenation of the α-amidocinnamic acid 63 using the less frequently used ferrocene-based ligand Me-BoPhoz led to the N-acetyl-ʟ-phenylalanine derivative 64 with complete conversion and with 94% ee. The desired enantiomer (S)-65 was obtained as a single isomer (>99% ee) after
  • )-2,5-difluorophenylalanine derivative 115 was carried out by coupling the commercially available aldehyde 55 and N-Boc phosphonate glycinate 112 to generate the enamino ester intermediate 113. The asymmetric hydrogenation of this enamine afforded the N-Boc-protected (R)-2,5-difluorophenylalanine ester
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Published 15 May 2020

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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  • asymmetric hydrogenation of ketones [22]. They showed that upon reduction with Raney nickel powder electrodes modified with (R,R)-(+)-tartaric acid, 2-hexanone 3 was converted to (S)-(+)-2-hexanol 4 with an average optical purity of 4%, whereas Raney nickel powder electrodes modified with (S,S)-(−)-tartaric
  • modified graphite cathode. Asymmetric hydrogenation of ketones using Raney nickel powder electrodes modified with optically active tartaric acid. Asymmetric reduction of prochiral activated olefins with a poly-ʟ-valine-coated graphite cathode. Asymmetric reduction of prochiral carbonyl compounds, oximes
  • and gem-dibromides on a poly-ʟ-valine-coated graphite cathode. Asymmetric hydrogenation of prochiral ketones with poly[RuIII(L)2Cl2]+-modified carbon felt cathodes. Asymmetric hydrogenation of α-keto esters using chiral polypyrrole film-coated cathode incorporated with palladium metal. Quinidine and
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Published 13 Nov 2019

Synthesis of non-racemic 4-nitro-2-sulfonylbutan-1-ones via Ni(II)-catalyzed asymmetric Michael reaction of β-ketosulfones

  • Alexander N. Reznikov,
  • Anastasiya E. Sibiryakova,
  • Marat R. Baimuratov,
  • Eugene V. Golovin,
  • Victor B. Rybakov and
  • Yuri N. Klimochkin

Beilstein J. Org. Chem. 2019, 15, 1289–1297, doi:10.3762/bjoc.15.127

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  • enantioselectivity are also known [13][14][15][16][17][18]. The studied methods for obtaining acyclic sulfones with stereogenic centers in the side chain are more limited. One of the most significant approaches to obtaining both cyclic and acyclic chiral sulfones is asymmetric hydrogenation in the presence of
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Published 12 Jun 2019

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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  • selectivity was the chiral oxazoline unit and not the inherent chirality of calixarene skeleton. Asymmetric hydrogenation Starting with distally O-dialkylated calixarene precursors, a series of BINOL-derived calix[4]arene-diphosphite ligands 40a–g were synthesized by Liu and Sandoval through phosphorylation
  • efficient ligands in asymmetric catalytic reactions, the Rh-catalyzed asymmetric hydrogenation of methyl acetamidoacrylate (41a) and the corresponding cinnamate (41b) was evaluated in the presence of ligands 40a–g (Scheme 11). The active catalyst was readily prepared in situ by mixing Rh(COD)2BF4 and
  • the presence of calix[4]arene ligands 36–39. Asymmetric hydrogenation of 41a and 41b catalyzed by in situ-generated catalysts comprised of [Rh(COD)2BF4] and calix[4]arene-based chiral diphosphite ligands [(S,S)-40]. Asymmetric Michael addition reaction of 44 with 45 catalyzed by 43. Asymmetric Michael
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Published 08 Jun 2018

Oligonucleotide analogues with cationic backbone linkages

  • Melissa Meng and
  • Christian Ducho

Beilstein J. Org. Chem. 2018, 14, 1293–1308, doi:10.3762/bjoc.14.111

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  • route using Wittig–Horner olefination and catalytic asymmetric hydrogenation as key steps (reactions not shown) [86][87][90][91][92]. Using 'dimeric' building blocks (S)-49, (R)-49, (S)-50, and (R)-50 (Scheme 5), automated DNA synthesis under standard conditions enabled the preparation of partially
  • peptide synthesis using the monomeric 3'-amino-nucleosyl amino acids (S)-56 and (R)-56, respectively, as building blocks. The synthesis of thymidinyl amino acids 56 was again started from a corresponding 5'-aldehyde 57 using Wittig–Horner olefination and catalytic asymmetric hydrogenation as key steps
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Published 04 Jun 2018

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

NeoPHOX – a structurally tunable ligand system for asymmetric catalysis

  • Jaroslav Padevět,
  • Marcus G. Schrems,
  • Robin Scheil and
  • Andreas Pfaltz

Beilstein J. Org. Chem. 2016, 12, 1185–1195, doi:10.3762/bjoc.12.114

Graphical Abstract
  • ligands were tested in the iridium-catalyzed asymmetric hydrogenation and palladium-catalyzed allylic substitution. In both reactions high enantioselectivities were achieved, that were comparable to the enantioselectivities obtained with the up to now best NeoPHOX ligand derived from expensive tert
  • -leucine. Keywords: allylic substitution; asymmetric hydrogenation; iridium; N,P ligand; palladium; Introduction Since their introduction and first successful application in enantioselective palladium-catalyzed allylic substitution in 1993 [1][2][3], chiral phosphinooxazolines (PHOX ligands) have emerged
  • as a widely used privileged ligand class [4][5][6][7][8][9][10][11][12]. One of the major areas of application of PHOX and related N,P ligands is the iridium-catalyzed asymmetric hydrogenation [13][14][15][16]. Compared to rhodium and ruthenium catalysts, iridium complexes derived from chiral N,P
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Published 13 Jun 2016

The synthesis of active pharmaceutical ingredients (APIs) using continuous flow chemistry

  • Marcus Baumann and
  • Ian R. Baxendale

Beilstein J. Org. Chem. 2015, 11, 1194–1219, doi:10.3762/bjoc.11.134

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  • key intermediate 83 at pilot-scale, a flow-based asymmetric hydrogenation was chosen as an economically more viable option compared to establishing a high-pressure batch process. As depicted in Scheme 14, solutions of the substrate 84 and a zinc triflate additive were combined with the rhodium
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Published 17 Jul 2015

NAA-modified DNA oligonucleotides with zwitterionic backbones: stereoselective synthesis of A–T phosphoramidite building blocks

  • Boris Schmidtgall,
  • Claudia Höbartner and
  • Christian Ducho

Beilstein J. Org. Chem. 2015, 11, 50–60, doi:10.3762/bjoc.11.8

Graphical Abstract
  • synthesis of both 6'-epimers of nucleosyl amino acid 9 has been reported before. We have used 3-(N-BOM)-protected thymidine-5'-aldehyde 10 (BOM = benzyloxymethyl), which can readily be obtained from thymidine, in a sequence of Wittig–Horner reaction, asymmetric hydrogenation of the resultant didehydro
  • thymidine-5'-aldehyde 11 with phosphonate 12, an unseparable mixture of Z-18 and E-18 was obtained in 66% overall yield (Z/E = 91:9). However, it is firmly established that the subsequent asymmetric hydrogenation proceeds significantly faster with the Z-configured didehydro amino acid substrate [58], and it
  • was therefore decided to use the aforementioned mixture of double bond isomers (containing 9% of the unwanted E-isomer) as starting material for this transformation. Asymmetric hydrogenation reactions were performed under homogeneous conditions using the chiral catalysts (S,S)-Me-DuPHOS-Rh or (R,R)-Me
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Published 13 Jan 2015

Amino acid motifs in natural products: synthesis of O-acylated derivatives of (2S,3S)-3-hydroxyleucine

  • Oliver Ries,
  • Martin Büschleb,
  • Markus Granitzka,
  • Dietmar Stalke and
  • Christian Ducho

Beilstein J. Org. Chem. 2014, 10, 1135–1142, doi:10.3762/bjoc.10.113

Graphical Abstract
  • will also be useful for the synthesis of other natural products containing this amino acid. Several synthetic approaches towards (2S,3S)-3-hydroxyleucine have been established utilizing for instance diastereoselective aldol reactions [26][27][28], Sharpless epoxidation [29], asymmetric hydrogenation
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Published 16 May 2014

Silica: An efficient catalyst for one-pot regioselective synthesis of dithioethers

  • Samir Kundu,
  • Babli Roy and
  • Basudeb Basu

Beilstein J. Org. Chem. 2014, 10, 26–33, doi:10.3762/bjoc.10.5

Graphical Abstract
  • employed in asymmetric hydrogenation [18]. Vicinal dithioethers are generally synthesised either by the metal-catalyzed addition of disulfides to alkenes [19][20] or by the traditional nucleophilic substitution of 1,2-dihalides with suitable thiols/thiolates [21][22]. They are also prepared by consecutive
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Published 07 Jan 2014

A combined continuous microflow photochemistry and asymmetric organocatalysis approach for the enantioselective synthesis of tetrahydroquinolines

  • Erli Sugiono and
  • Magnus Rueping

Beilstein J. Org. Chem. 2013, 9, 2457–2462, doi:10.3762/bjoc.9.284

Graphical Abstract
  • synthesis have been developed. Among the synthetic protocols developed for the preparation of optically active tetrahydroquinolines, the asymmetric hydrogenation of substituted quinolines represents the most widely used and efficient method to prepare this class of N-heterocyclic compound [5][6][7][8][9][10
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Published 13 Nov 2013

An overview of the synthetic routes to the best selling drugs containing 6-membered heterocycles

  • Marcus Baumann and
  • Ian R. Baxendale

Beilstein J. Org. Chem. 2013, 9, 2265–2319, doi:10.3762/bjoc.9.265

Graphical Abstract
  • ) is hydrogenated to the vinylogous carbamate 2.53 in the presence of acetic anhydride. Then the intermediate 2.53 can be subjected to an asymmetric hydrogenation utilising rhodium-based catalyst systems at elevated hydrogen pressures rendering the desired ethyl (R)-nipecotate 2.54 [75]. Uniting the
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Published 30 Oct 2013

Continuous-flow catalytic asymmetric hydrogenations: Reaction optimization using FTIR inline analysis

  • Magnus Rueping,
  • Teerawut Bootwicha and
  • Erli Sugiono

Beilstein J. Org. Chem. 2012, 8, 300–307, doi:10.3762/bjoc.8.32

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  • hydrogenation. Asymmetric hydrogenation of benzoxazines. Optimization of the Brønsted acid catalyzed reduction of benzoxazines.a Scope of the Brønsted acid catalyzed reduction of benzoxazines.a Optimization of the Brønsted acid catalyzed transfer hydrogenation of quinolines.a Scope of the Brønsted acid
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Published 23 Feb 2012

Efficient and selective chemical transformations under flow conditions: The combination of supported catalysts and supercritical fluids

  • M. Isabel Burguete,
  • Eduardo García-Verdugo and
  • Santiago V. Luis

Beilstein J. Org. Chem. 2011, 7, 1347–1359, doi:10.3762/bjoc.7.159

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  • mobile phase to deliver the reactants to the IL phase and to extract the products from there can be easily designed. This approach has been recently used to carry out the asymmetric hydrogenation of dimethyl itaconate. A chiral organometallic catalyst was immobilized on a IL phase absorbed onto a
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Published 30 Sep 2011

A practical two-step procedure for the preparation of enantiopure pyridines: Multicomponent reactions of alkoxyallenes, nitriles and carboxylic acids followed by a cyclocondensation reaction

  • Christian Eidamshaus,
  • Roopender Kumar,
  • Mrinal K. Bera and
  • Hans-Ulrich Reissig

Beilstein J. Org. Chem. 2011, 7, 962–975, doi:10.3762/bjoc.7.108

Graphical Abstract
  • metal-catalyzed processes and for the construction of supramolecular architectures [13]. Pyridines with chiral side chains are widely employed as ligands in asymmetric transformations, for instance, in the asymmetric hydrogenation of olefins, in enantioselective additions of metal organyls to aldehydes
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Published 13 Jul 2011

A two step synthesis of a key unit B precursor of cryptophycins by asymmetric hydrogenation

  • Benedikt Sammet,
  • Mathilde Brax and
  • Norbert Sewald

Beilstein J. Org. Chem. 2011, 7, 243–245, doi:10.3762/bjoc.7.32

Graphical Abstract
  • yields from commercially available starting materials has been developed. The key step is an asymmetric hydrogenation using the commercially available [(COD)Rh-(R,R)-Et-DuPhos]BF4 catalyst. The synthetic route provides the advantage of less synthetic steps, proceeds with high yields and
  • enantioselectivity, and avoids hazardous reaction conditions. Keywords: amino acid; asymmetric hydrogenation; cryptophycin; DuPhos; Introduction Cryptophycins are macrocyclic depsipeptides, which show very high cytotoxicity even against multidrug-resistant cell lines. They inhibit mitosis of eukaryotic cells by
  • unit B precursor 4 (Scheme 1) from commercially available non-toxic starting materials based on an asymmetric hydrogenation approach to make the unit B precursor synthesis shorter and safer. In general, there is also a whole variety of possible stereoselective synthetic methods available to synthesize
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Published 22 Feb 2011

Can we measure catalyst efficiency in asymmetric chemical reactions? A theoretical approach

  • Shaimaa El-Fayyoumy,
  • Matthew H. Todd and
  • Christopher J. Richards

Beilstein J. Org. Chem. 2009, 5, No. 67, doi:10.3762/bjoc.5.67

Graphical Abstract
  • asymmetric hydrogenation, which gives a product of 79% ee, is employed in the industrial multi-tonne synthesis of (S)-metolachlor [3]. An instructive comparison may be made between an antibody capable of catalysing an intramolecular, asymmetric aldol reaction and proline, capable of catalysing the same
  • extraordinary efficiency of ligated transition metal catalysts in asymmetric hydrogenation. An analysis of the unit cost of each catalyst reveals these to span a very wide range, with only the amino acid proline comparing favourably with the hydrogenation systems. The ACE formula permits a comparison between
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Published 19 Nov 2009

Asymmetric reactions in continuous flow

  • Xiao Yin Mak,
  • Paola Laurino and
  • Peter H. Seeberger

Beilstein J. Org. Chem. 2009, 5, No. 19, doi:10.3762/bjoc.5.19

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  • observed to be higher in the microreactor. A single-channel, falling film microreactor designed specifically for efficient gas-liquid phase contact was used to screen the asymmetric hydrogenation of (Z)-methyl acetamidocinnamate 4 and related substrates (Scheme 2) [13][14]. Seventeen chiral phosphines were
  • alternative reaction medium to traditional organic solvents is attractive not only for environmental reasons, but also because of its high miscibility with gases, and its ease of removal from the product (simply by depressurization) [46]. In an early example of asymmetric hydrogenation in flow, ethyl pyruvate
  • was reduced using a cinchonidine-modified Pt/Al2O3 catalyst in a fixed bed reactor in both supercritical carbon dioxide and ethane [47]. Poliakoff and co-workers have investigated the continuous asymmetric hydrogenation of dimethyl itaconate in scCO2 [48][49]. By using the catalyst [Rh(COD)2(nbd
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Published 29 Apr 2009

Large- scale ruthenium- and enzyme- catalyzed dynamic kinetic resolution of (rac)-1-phenylethanol

  • Krisztián Bogár,
  • Belén Martín-Matute and
  • Jan-E. Bäckvall

Beilstein J. Org. Chem. 2007, 3, No. 50, doi:10.1186/1860-5397-3-50

Graphical Abstract
  • natural products. [1][2][3][4] A few methods have been developed for the enantioselective synthesis of chiral alcohols including catalytic asymmetric hydrogenation [5][6][7][8][9][10][11][12][13][14] and enantioselective hydride addition [15][16] of prochiral ketones, asymmetric dialkylzinc addition to
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Published 20 Dec 2007
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