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Zinc Compounds Organozinc reagents

The Reformatsky reaction is a classical reaction in which metallic zinc, an a-haloester, and a carbonyl compound react to give a (i-hydroxyester.162 The zinc and a-haloester react to form an organozinc reagent. Because the carboxylate group can stabilize the carbanionic center, the product is essentially the zinc enolate of the dehalogenated ester.163 The enolate effects nucleophilic attack on the carbonyl group. [Pg.657]

Lack of cooling during preparation of the Simmons-Smith organozinc reagent caused the reaction to erupt. The possibly pyrophoric nature of organozinc compounds and the presence of ether presents a severe fire hazard [1]. An alternative, safer method of activating the zinc for the reaction involves use of ultrasonic irradiation rather than the copper-zinc couple [2]. [Pg.1496]

Zinc compounds have recently been used as pre-catalysts for the polymerization of lactides and the co-polymerization of epoxides and carbon dioxide (see Sections 2.06.8-2.06.12). The active catalysts in these reactions are not organozinc compounds, but their protonolyzed products. A few well-defined organozinc compounds, however, have been used as co-catalysts and chain-transfer reagents in the transition metal-catalyzed polymerization of olefins. [Pg.328]

The related zinc cuprates formed from diorganozinc reagents and copper(I) cyanide also undergo smooth SN2 substitution reactions with propargyl oxiranes in the presence of phosphines or phosphites (Scheme 2.12). These transformations can also be performed with catalytic amounts of the copper salt since no direct reaction between the organozinc reagent and the substrate interferes [31, 34], and therefore should also be applicable to functionalized organozinc compounds. [Pg.58]

The synthesis of functionalized zinc organometallics can be accomplished with a variety of methods that have been developed in recent years. The intrinsic moderate reactivity of organozinc reagents can be dramatically increased by the use of the appropriate transition metal catalyst or Lewis acid. Furthermore, the low ionic character of the carbon-zinc bond allows the preparation of a variety of chiral zinc organometallics with synthetically useful configurational stability. These properties make organozinc compounds ideal inteimediates for the synthesis of complex and polyfunctionalized organic molecules. [Pg.379]

Organozinc reagent prepared from the 2-(trimethylsilyl)allyl bromide 156 and zinc react with alkynes or carbonyl compounds as well as nitriles to give the corresponding coupling products in moderate to good yields (equation 130)225. [Pg.1837]

An unusual syn addition to epoxides occurs when 1,3-diene monoepoxides are treated with organozinc reagents. Thus, the cyclic vinyl epoxide 72 was converted to the cis-ethyl-cyclohexenol 75 with diethyl zinc in methylene chloride and trifluoroacetic acid. The syn addition is believed to derive from an initial coordination of the oxiranyl oxygen to the organozinc compound, which then delivers the alkyl group to the same face. This transfer is facilitated by a relaxation of the sp3 hybridization brought about by the Lewis acidic zinc center and the allylic character of the incipient carbocation <020L905>. [Pg.85]


See other pages where Zinc Compounds Organozinc reagents is mentioned: [Pg.650]    [Pg.212]    [Pg.55]    [Pg.254]    [Pg.74]    [Pg.620]    [Pg.311]    [Pg.312]    [Pg.383]    [Pg.77]    [Pg.55]    [Pg.57]    [Pg.254]    [Pg.110]    [Pg.55]    [Pg.57]    [Pg.254]    [Pg.462]    [Pg.113]    [Pg.774]    [Pg.82]    [Pg.218]    [Pg.288]    [Pg.334]    [Pg.468]    [Pg.605]    [Pg.642]    [Pg.685]    [Pg.1109]    [Pg.393]    [Pg.280]    [Pg.362]    [Pg.59]    [Pg.6]    [Pg.37]    [Pg.157]    [Pg.180]    [Pg.198]    [Pg.132]   
See also in sourсe #XX -- [ Pg.220 , Pg.294 ]




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Organozinc

Organozinc compounds

Organozinc reagents

Organozincates

Organozincs

Organozincs compounds

Organozincs reagents

Zinc compounds

Zinc reagents

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