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  • 1
    Electronic Resource
    Electronic Resource
    Weinheim : Wiley-Blackwell
    Berichte der deutschen chemischen Gesellschaft 127 (1994), S. 1969-1980 
    ISSN: 0009-2940
    Keywords: Protonation ; Enantioselectivity ; Lactone enolates ; Chiral proton sources ; Chemistry ; Inorganic Chemistry
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Chemistry and Pharmacology
    Notes: Stereoselective Protonation of Carbanions, 4[1].  -  Enantioselective Protonation of Lactone Enolates[2]The prochiral lithium enolates derived from the five-membered lactones rac-1 and rac-2 were protonated by 37 OH-and 21 NH-chiral proton sources in THF at  -  78°C. The enantioselectivities, determined directly from the reaction mixture by chiral HPLC, are always higher for system 1, probably due to restricted rotation of the phenyl group in 1Li at low temperature (NMR) and range from 0-54% ee. The strongest stereodifferentiation is observed if the OH or NH acids carry an adjacent O- or N-containing group (structures G-J) which allows complexation with the lithium ion. A plausible transition state involving the dimeric lithium enolate is proposed.
    Additional Material: 1 Ill.
    Type of Medium: Electronic Resource
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  • 2
    Electronic Resource
    Electronic Resource
    Weinheim : Wiley-Blackwell
    Berichte der deutschen chemischen Gesellschaft 127 (1994), S. 1989-1992 
    ISSN: 0009-2940
    Keywords: Enantioselectivity ; Protonation ; Ester enolates ; Lactones ; Chemistry ; Inorganic Chemistry
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Chemistry and Pharmacology
    Notes: Stereoselective Protonation of Carbanions, 6[1].  -  Enantioselective Protonation of γ-Butyrolactone Enolates*The lithium enolates 3Li-7Li, produced from 3-7 by LDA or LiHMDS in THF, are protonated with eleven chiral proton sources at -78°C in THF which produced high enantioselectivities with 1Li and 2Li[5]. Although the enolates (3Li, 6Li, 7Li) are not deuterated quantitatively[1], 1H- and 13C-NMR spectra in THF at -78°C reveal not only quantitative deprotonation (3Li, 6Li) but also aggregation (dimerisation) and hindered rotation of the phenyl group in 3Li. From comparison of the enantioselectivities produced by five chiral proton sources with 1Li-6Li (Tab. 4) definite structure/selectivity correlations can not be derived both for the enolates and the proton sources.
    Additional Material: 4 Tab.
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  • 3
    Electronic Resource
    Electronic Resource
    Weinheim : Wiley-Blackwell
    Berichte der deutschen chemischen Gesellschaft 127 (1994), S. 1981-1988 
    ISSN: 0009-2940
    Keywords: Enantioselectivity ; Protonation ; Solvent effects ; Lewis acids ; Lithium salts ; Deuteration ; Chemistry ; Inorganic Chemistry
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Chemistry and Pharmacology
    Notes: Stereoselective Protonation of Carbanions, 5[1].  -  Effects of Reaction Conditions on the Enantioselective Protonation of Lactone Enolates[2]Protonation of the enolates 1Li and 2Li by using standard conditions yields enantioselectivities up to 54 and 50% ee, respectively, depending on the chiral proton source[1]. These values may change dramatically by the following variations (standard ee's in parenthesis): (i) In Et2O/THF (90:10) (S)-2 with 72% ee (44%) is formed with (R)-pantolactone (3) but only 48% ee (39%) with (R,R)-tartaric ester 4 (Figure 1). (ii) Lewis acids may produce rac-2 (SnCl2, MgBr2) or definitely increase the enantioselectivity: With lactone 3: 46% ee (44%); with esters 4: 48% ee (39%); with bissulfonamide 7: 67% ee (47%) (Table 1, 2). (iii) Lithium chloride (2-4 equiv.) in THF yields (S)-1 with 68% ee (47%) and (S)-2 with 77% ee (39%) but only if ester 4 ist employed as chiral proton source (Figure 2). (iv) Chiral Lewis bases create (S)-2 with up to 30% ee on protonation with achiral acids (Table 3, 4). (v) Deuteration of 2Li ranges from 16 to 95% depending on the nature of the base as well as the deuteron source. The degrees of deuteration and enantioselectivity are not correlated. All results demonstrate the complexity of enantioselective protonation of enolates which still needs empirical optimization.
    Additional Material: 2 Ill.
    Type of Medium: Electronic Resource
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