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Dianions reactions with

Diethyl 3-oxoheptanedioate, for example, is clearly derived from giutaryl and acetic acid synthons (e.g. acetoacetic ester M. Guha, 1973 disconnection 1). Disconnection 2 leads to acrylic and acetoacetic esters as reagents. The dianion of acetoacetic ester could, in prin-ciple,be used as described for acetylacetone (p. 9f.), but the reaction with acrylic ester would inevitably yield by-products from aldol-type side-reactions. [Pg.207]

Although less researched than the 2-position, modifications at the 6-position of intact penems have been reported. Generation of the dianion of the penem (52, R = CH ) using a strong base such as / -butyUithium or lithium diisopropylamide, followed by reaction with electrophiles yields 6-substituted 2-methylpenems in moderate yield (128). The enhanced acidity of the 6-proton in the bromopenem (88) [114409-16-4] h.a.s been exploited to prepare the... [Pg.13]

The dianions derived from furan- and thiophene-carboxylic acids by deprotonation with LDA have been reacted with various electrophiles (Scheme 64). The oxygen dianions reacted efficiently with aldehydes and ketones but not so efficiently with alkyl halides or epoxides. The sulfur dianions reacted with allyl bromide, a reaction which failed in the case of the dianions derived from furancarboxylic acids, and are therefore judged to be the softer nucleophiles (81JCS(Pl)1125,80TL505l). [Pg.72]

The dianions of methylated thiophenecarboxylic acids e.g. 155) are also readily generated by reaction with LDA they undergo preparatively useful reactions with a range of carbon electrophiles (80JOC4528). [Pg.72]

The methylhydrazone of acetophenone (112) underwent ready reaction with n-butyl-lithium giving the dianion (113) reaction with acid derivatives such acid chlorides or esters resulted in pyrazole (114) formation whereas with aldehydes, pyrazolines were obtained (76SC5). With dichloromethyleneiminium salts (115), 5-dimethylaminopyrazoles... [Pg.125]

Formation of the /3-lactam (161) by reaction of the dianion (160) with methylene diiodide provides an example of a [3 + 1] type of ring closure (79TL2031). The insertion of carbon... [Pg.259]

Although redox processes are sometimes observed in metathetical reactions with metal halides, the pyramidal dianion [Te(NtBu)3] has a rich coordination chemistry (Scheme 10.8). For example, the reaction... [Pg.196]

The combination of hard (A) and soft (5) coordination in the 1,5-P2N4S2 ring system leads to a diversity of coordination modes in complexes with transition metals (Lig. 13.1). In some cases these complexes may be prepared by the reaction of the dianion [Ph4P2N4S2] with a metal halide complex, but these reactions frequently result in redox to regenerate 13.3 (L = S, R = Ph). A more versatile approach is the oxidative addition of the neutral ligand 13.3 (L = S) to the metal centre. [Pg.263]

For the mechanistic course of the reaction the diketone 5 is assumed to be an intermediate, since small amounts of 5 can sometimes be isolated as a minor product. It is likely that the sodium initially reacts with the ester 1 to give the radical anion species 3, which can dimerize to the dianion 4. By release of two alkoxides R 0 the diketone 5 is formed. Further reaction with sodium leads to the dianion 6, which yields the a-hydroxy ketone 2 upon aqueous workup ... [Pg.1]

Azo coupling reactions with the polyhedral boron hydride decahydrodecaborate dianion B10Hio"" (12.164, Fig. 12-9) were discovered by Hawthorne and Olsen (1964, 1965). [Pg.380]

When methyltriflone 248 was treated with two equivalents of n-butyllithium at — 50 °C in THF, a, a-dianion 249 is formed. After methylation of this dianion, further treatment with two equivalents of n-butyllithium gives the a, a -dianion 250. This dianion can be alkylated at the terminal carbon atom, like the dianions from ketosulfones. On reaction with three equivalents of n-butyllithium, 248 gives a, a, a -trianion 251 which, upon methylation with methyl iodide, afforded methylated product 252. Hendrickson and Palumbo328 prepared cyclopentenone derivatives using 248 as the starting material. [Pg.631]


See other pages where Dianions reactions with is mentioned: [Pg.192]    [Pg.192]    [Pg.263]    [Pg.45]    [Pg.219]    [Pg.263]    [Pg.182]    [Pg.183]    [Pg.203]    [Pg.159]    [Pg.193]    [Pg.737]    [Pg.157]    [Pg.380]    [Pg.381]    [Pg.318]   
See also in sourсe #XX -- [ Pg.290 ]




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Aldehydes, reaction with acid dianions

Allyl bromide, reaction with dianion

Amides reaction with benzophenone dianion

Bis ,reaction with carborane dianions

Carborane dianion, reaction with nickel

Carboxylic acids dianions, reaction with epoxides

Carboxylic acids dianions, reaction with esters

Enolate anions, dianions reaction with alkyl halides

Enolate anions, dianions, reaction with

Epoxides, reaction with acid dianions

Esters reactions with benzophenone dianion

Esters, reaction with acid dianions

Halides, alkyl, reaction with acid dianions

Halides, alkyl, reaction with ester dianions

Isocyanates reactions with ytterbium ketone dianions

Ketones, reaction with acid dianions

Nitriles reactions with diaryl ketone dianions

Propionic acid, 3- dianions reactions with carbonyl compounds

Thioallyl dianions reaction with aldehydes

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