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Search for "chiral diamines" in Full Text gives 12 result(s) in Beilstein Journal of Organic Chemistry.

Pyridine C(sp2)–H bond functionalization under transition-metal and rare earth metal catalysis

  • Haritha Sindhe,
  • Malladi Mounika Reddy,
  • Karthikeyan Rajkumar,
  • Akshay Kamble,
  • Amardeep Singh,
  • Anand Kumar and
  • Satyasheel Sharma

Beilstein J. Org. Chem. 2023, 19, 820–863, doi:10.3762/bjoc.19.62

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  • imines 25 (Scheme 6). The authors also demonstrated the enantioselective aminoalkylation, using chiral diamines as ligands. The introduction of chiral diamines in the metal complex produced the aminoalkylated products enantioselectivity with good ratio of enantiomeric excess. The plausible mechanism
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Published 12 Jun 2023

Bioinspired tetraamino-bisthiourea chiral macrocycles in catalyzing decarboxylative Mannich reactions

  • Hao Guo,
  • Yu-Fei Ao,
  • De-Xian Wang and
  • Qi-Qiang Wang

Beilstein J. Org. Chem. 2022, 18, 486–496, doi:10.3762/bjoc.18.51

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  • ][46][47][48][49][50][51][52]. Results and Discussion Synthesis of macrocycles The tetraamino-bisthiourea chiral macrocycles were synthesized by a stepwise strategy (Scheme 1). The easily available chiral diamines including 1,2-cyclohexanediamines and 1,2-diphenylethylenediamines were chosen as the
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Published 02 May 2022

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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  • -Michael reaction of (2R,3S)-8a in chloroform-d solution. ORTEP diagram of (2R,3S)-8d. The proposed mechanism of asymmetric addition of β-ketosulfones to nitroalkenes. Transition state models for asymmetric addition of β-ketosulfones to nitroalkenes. Screening of Ni(II) complexes with chiral diamines in
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Published 12 Jun 2019

Synthesis of a sucrose-based macrocycle with unsymmetrical monosaccharides "arms"

  • Karolina Tiara,
  • Mykhaylo A. Potopnyk and
  • Sławomir Jarosz

Beilstein J. Org. Chem. 2018, 14, 634–641, doi:10.3762/bjoc.14.50

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  • ; Introduction Chiral macrocyclic compounds play an important role in supramolecular and biological systems [1][2]. Many of them serve as convenient receptors for cations [3], anions [4], ion pairs [5], neutral molecules [6] etc. Binaphthols [7][8][9], amino acids [10], chiral diamines [11][12], carbohydrates
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Published 15 Mar 2018

Mechanochemical synthesis of thioureas, ureas and guanidines

  • Vjekoslav Štrukil

Beilstein J. Org. Chem. 2017, 13, 1828–1849, doi:10.3762/bjoc.13.178

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  • as evidenced by the disappearance of the characteristic –N=C=S stretching band between 2000 and 2200 cm–1 in the FTIR-ATR spectra. The isothiocyanate was then coupled with other chiral diamines such as enantiomers of trans-1,2-diaminocyclohexane, (1R,2R)-(+)-1,2-diphenylethylenediamine and (R
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Published 01 Sep 2017

Opportunities and challenges for direct C–H functionalization of piperazines

  • Zhishi Ye,
  • Kristen E. Gettys and
  • Mingji Dai

Beilstein J. Org. Chem. 2016, 12, 702–715, doi:10.3762/bjoc.12.70

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  • atoms [30][31]. Corresponding enantioselective versions have also been developed using chiral diamines as ligands to allow access to enantioenriched α-substituted nitrogen heterocycles. However, most of the success has been made in the territory of N-Boc-pyrrolidine [32][33] and N-Boc-piperidine [34][35
  • -functionalization of N-Boc-protected saturated mono-nitrogen heterocycles via the lithiation trapping sequence using chiral diamines such as (−)-sparteine and (+)-sparteine surrogates as ligands have been made. However, the progress for the enantioselective α-functionalization of N-Boc-protected piperazines is
  • , a significant progress has been made. Due to the low reactivity of MeI and Me2SO4, a diamine switch strategy of replacing the bulky chiral diamines (21/28) with the less hindered TMEDA has been put in place to improve the reactivity of the alkyllithium intermediate and gave a 48% yield of (S)-46
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Published 13 Apr 2016

The enantioselective synthesis of (S)-(+)-mianserin and (S)-(+)-epinastine

  • Piotr Roszkowski,
  • Jan. K. Maurin and
  • Zbigniew Czarnocki

Beilstein J. Org. Chem. 2015, 11, 1509–1513, doi:10.3762/bjoc.11.164

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  • : chiral diamines; enantioselective reduction; epinastine; mianserin; ruthenium complexes; Introduction Mianserin (1) is a tetracyclic compound widely used as a drug in the treatment of depression. Despite the fact that the (S)-(+)-enantiomer of mianserin is more potent than the (R)-antipode in
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Published 28 Aug 2015

Inter- and intramolecular enantioselective carbolithiation reactions

  • Asier Gómez-SanJuan,
  • Nuria Sotomayor and
  • Esther Lete

Beilstein J. Org. Chem. 2013, 9, 313–322, doi:10.3762/bjoc.9.36

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  • derivatives also undergo efficient enantioselective carbolithiation in the presence of chiral diamines, when there are electron-donating groups (e.g., methoxy and dialkylamino) at the ortho- or para-positions of the benzene ring to stabilize the intermediate benzyllithiums, thus deactivating the double bond
  • secondary α-carbamoyloxybenzyllithiums 15, in the presence of chiral diamines, such as (−)-sparteine (L1) or (−)-α-isosparteine (L3), but only with moderate enantiofacial differentiation. The best results are obtained with unsubstituted alkenes (vinyl carbamates) by using butyllithium/(−)-α-isosparteine (up
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Published 13 Feb 2013

Metal-mediated aminocatalysis provides mild conditions: Enantioselective Michael addition mediated by primary amino catalysts and alkali-metal ions

  • Matthias Leven,
  • Jörg M. Neudörfl and
  • Bernd Goldfuss

Beilstein J. Org. Chem. 2013, 9, 155–165, doi:10.3762/bjoc.9.18

Graphical Abstract
  • good yields and ee’s in the range of 80% [19][20][21][22][23][24][25][26][27]. Other attempts employing chinchona alkaloids provided ee’s higher than 90% [24]. Results and Discussion The newly developed catalysts are derived from C2-symmetric chiral diamines 2 and 3 and 2-sulfobenzoic acid by formation
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Published 23 Jan 2013

Bromine–lithium exchange: An efficient tool in the modular construction of biaryl ligands

  • Laurence Bonnafoux,
  • Frédéric R. Leroux and
  • Françoise Colobert

Beilstein J. Org. Chem. 2011, 7, 1278–1287, doi:10.3762/bjoc.7.148

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  • stoichiometric amount of chiral diamines. An enantiomeric excess of up to 63% was obtained [67]. H. Kagan et al. reported the desymmetrization of prochiral aromatic or vinylic dihalide substrates by halogen–metal exchange in the presence of a stoichiometric amount of diamines, with enantiomeric excess up to 26
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Published 14 Sep 2011

Molecular recognition of organic ammonium ions in solution using synthetic receptors

  • Andreas Späth and
  • Burkhard König

Beilstein J. Org. Chem. 2010, 6, No. 32, doi:10.3762/bjoc.6.32

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Published 06 Apr 2010

C2-symmetric bisamidines: Chiral Brønsted bases catalysing the Diels- Alder reaction of anthrones

  • Deniz Akalay,
  • Gerd Dürner,
  • Jan W. Bats and
  • Michael W. Göbel

Beilstein J. Org. Chem. 2008, 4, No. 28, doi:10.3762/bjoc.4.28

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  • base catalysts in the cycloaddition of anthrones 1 and maleimides 2. Results and Discussion Analogous to the synthesis of compound 8a [6], the other bisamidines were prepared as hydrochlorides in 60–79% yield from the corresponding chiral diamines 9 and bisimidate 10 in refluxing ethanol. Simple
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Published 07 Aug 2008
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