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Ring compounds boron hydrides

Fortschritte der Chemischen Forschung, F. Boscke, ed., New Results in Boron Chemistry, Springer Verlag, 1970 (borates, B—N ring compounds, lower hydrides). [Pg.259]

Notable examples of general synthetic procedures in Volume 47 include the synthesis of aromatic aldehydes (from dichloro-methyl methyl ether), aliphatic aldehydes (from alkyl halides and trimethylamine oxide and by oxidation of alcohols using dimethyl sulfoxide, dicyclohexylcarbodiimide, and pyridinum trifluoro-acetate the latter method is particularly useful since the conditions are so mild), carbethoxycycloalkanones (from sodium hydride, diethyl carbonate, and the cycloalkanone), m-dialkylbenzenes (from the />-isomer by isomerization with hydrogen fluoride and boron trifluoride), and the deamination of amines (by conversion to the nitrosoamide and thermolysis to the ester). Other general methods are represented by the synthesis of 1 J-difluoroolefins (from sodium chlorodifluoroacetate, triphenyl phosphine, and an aldehyde or ketone), the nitration of aromatic rings (with ni-tronium tetrafluoroborate), the reductive methylation of aromatic nitro compounds (with formaldehyde and hydrogen), the synthesis of dialkyl ketones (from carboxylic acids and iron powder), and the preparation of 1-substituted cyclopropanols (from the condensation of a 1,3-dichloro-2-propanol derivative and ethyl-... [Pg.144]

If compound 29 is treated with SMe2 and H2SO4 the zwitterionic complex [2,2-(CO)2-2,7-(SMe2)2-c/oxo-2,l-FeCBioHioj (33) is obtained in which an SMc2 group is attached both to the metal vertex and to a boron atom situated in one of the p sites in the CBBBB ring coordinated to the iron, a result confirmed by X-ray diffraction. In reactions of this kind the p rather than the a sites are favored for substitution by a donor molecule because the H atoms of their BH groups are the more hydridic and therefore are more susceptible to attack by electrophiles. [Pg.10]

The boron atom dominates the reactivity of the boracyclic compounds because of its inherent Lewis acidity. Consequently, there have been very few reports on the reactivity of substituents attached to the ring carbon atoms in the five-membered boronated cyclic systems. Singaram and co-workers developed a novel catalyst 31 based on dicarboxylic acid derivative of 1,3,2-dioxaborolane for the asymmetric reduction of prochiral ketones 32. This catalyst reduces a wide variety of ketones enantioselectively in the presence of a co-reductant such as LiBH4. The mechanism involves the coordination of ketone 32 with the chiral boronate 31 and the conjugation of borohydride with carboxylic acid to furnish the chiral borohydride complex 34. Subsequent transfer of hydride from the least hindered face of the ketone yields the corresponding alcohol 35 in high ee (Scheme 3) <20060PD949>. [Pg.620]


See other pages where Ring compounds boron hydrides is mentioned: [Pg.292]    [Pg.533]    [Pg.292]    [Pg.654]    [Pg.190]    [Pg.76]    [Pg.177]    [Pg.1744]    [Pg.526]    [Pg.654]    [Pg.189]    [Pg.72]    [Pg.1743]    [Pg.65]    [Pg.21]    [Pg.302]    [Pg.73]    [Pg.15]    [Pg.190]    [Pg.624]    [Pg.703]    [Pg.339]    [Pg.38]    [Pg.88]    [Pg.247]    [Pg.431]    [Pg.367]    [Pg.1203]    [Pg.184]    [Pg.539]    [Pg.20]    [Pg.20]    [Pg.587]    [Pg.201]    [Pg.862]    [Pg.373]    [Pg.71]    [Pg.187]    [Pg.90]    [Pg.24]    [Pg.209]    [Pg.20]    [Pg.20]    [Pg.30]   
See also in sourсe #XX -- [ Pg.92 ]




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Boron compounds

Hydride compounds

Ring compounds hydrides

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