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Acetylacetonate dianion

Nonanedione, another 1,3-difunctional target molecule, may be obtained from the reaction of hexanoyl chloride with acetonide anion (disconnection 1). The 2,4-dioxo substitution pattern, however, is already present in inexpensive, symmetrical acetylacetone (2,4-pentanedione). Disconnection 2 would therefore offer a tempting alternative. A problem arises because of the acidity of protons at C-3 of acetylacetone. This, however, would probably not be a serious obstacle if one produces the dianion with strong base, since the strongly basic terminal carbanion would be a much more reactive nucleophile than the central one (K.G. Hampton, 1973 see p. 9f.). [Pg.204]

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]

Total spin S, nitrosyl stretching frequencies relevant distances and angles have been detailed. Abbreviations. acac =substituted acetylacetonate BMPA-Pr=iV-methylpropanoate-N,N-bis(2-pyridylmethyl) amine bpb = dicarboxamide dianion cyclam- ... [Pg.110]


See other pages where Acetylacetonate dianion is mentioned: [Pg.390]    [Pg.1036]    [Pg.390]    [Pg.1036]    [Pg.108]    [Pg.543]    [Pg.369]    [Pg.375]    [Pg.391]    [Pg.467]    [Pg.250]    [Pg.1521]    [Pg.818]    [Pg.251]    [Pg.119]    [Pg.629]    [Pg.838]    [Pg.126]    [Pg.1521]    [Pg.616]    [Pg.255]    [Pg.200]    [Pg.105]    [Pg.1015]    [Pg.1021]    [Pg.1037]    [Pg.2382]    [Pg.250]    [Pg.380]    [Pg.28]    [Pg.75]    [Pg.47]   


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