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Lithio, rearrangement

In a method for propargylating an alkyl halide without allylic rearrangement, the halide is treated with lithio-l-trimethylsilylpropyne (122) which is a lithium compound protected by an SiMca group.Attack by the ambident nucleophile... [Pg.543]

Ring enlargement.1 A new route to seven-membered ring systems from a cyclohexenone (1) involves a photocycloaddition of ethylene to provide the bicy-clooctanone 2. Addition of lithio-1,3-dithiane to 2 provides the adduct 3, which on reaction with HgO and HBF4 forms an unstable rearranged hydroxy aldehyde... [Pg.157]

These reactions are thought to proceed by initial formation of the lithio propargylic alcohol adduct, which undergoes a reversible Brook rearrangement (Eq. 9.14). The resulting propargyllithium species can equilibrate with the allenyl isomer and subsequent reaction with the alkyl iodide electrophile takes place at the allenic site. An intramolecular version of this alkylation reaction leads to cyclic allenylidene products (Eq. 9.15). [Pg.506]

The pathway via the lithio quadricyclane intermediate failed due to an unexpected rearrangement presented in Fig. 2.16. [Pg.26]

Even after successful metalation at the 5-position of imidazoles, rearrangement to the more thermodynamically stable 2-lithio derivative can still occur, as was shown by the isolation of the 2-aldehyde product from the reaction of l-methyl-4,5-dibromoimidazole with n-butyllithium and DMF (Scheme 48) (81MI1). [Pg.198]

A similar type of transmetalation was also seen with l,2-dimethyl-5-trimethylstannylimidazole, which gave the 5-lithio derivative at -100°C, but rearranged to the 2-lithiomethyl derivative at higher temperatures [83JCS(P1)271]. However, transmetalation does not occur with Grignard reagents and 5-substituted imidazoles can be successfully prepared via this route (Scheme 49) (81 Mil 82OPP409). [Pg.198]

Low temperatures are necessary with orr/io-halolithiopyridines in order to prevent pyridyne formation, and an added complication with some bromopyridines is that rearrangement of the initial lithio derivative can occur via an intermolecular transmetalation process (Scheme 108)(79T1625 85T3433). This result has been used synthetically to give 2-bromo-3-substituted derivatives from 2,6-dibromopyridine [90JOM-... [Pg.232]

For example, 1-donor-substituted cyclopropancmethanols may be efficiently produced by cyclopropanation of suitably substituted enol ethers, by reaction of 1-donor-substituted 1-lithio-cyclopropanes with carbonyl compounds, or by addition of carbon nucleophiles to 1-donor-substituted cyclopropanecarbaldehydes. Oxaspiropentanes, important precursors of cyclobutanones, may as easily be obtained by epoxidation of methylenecyclopropanes, or by reaction of carbonyl compounds with diphenylsulfonium cyclopropanide and l-bromo-1-lithiocyclopropanes, respectively. Moreover, as the stereochemistry of most rearrangements may be efficiently controlled, asymmetric syntheses begin to appear. [Pg.251]

Lithio-l-methoxycyclopropane can be generated by reductive lithiation of 1-methoxy-l-phenylsulfanylcyclopropane with lithium 1-dimethylaminonaphthalenide (Method A)146,147 or lithium 4,4 -di-f< r/-butylbiphenylide (Method B)148 in tetrahydrofuran at — 78 °C. 1-Lithio-l-methoxycyclopropanc reacts with enones and enals to produce 1-methoxycyclo-propanemethanols, which rearrange to vinylcyclobutanones 1 using tetrafluoroboric acid in tetrahydrofuran (Method C) 146,147 or triflic anhydride in the presence of 2,6-di-f 77-butyl-4-methylpyridine in dichloromethane (Method D).148 The latter method avoids destruction of acid-sensitive products (Table 11). [Pg.287]

Bicyclo[4.2.0]octan-7-ones 7, substituted at C8, resulted from addition of 7-lithio-7-methoxy-bicyclo[4.1.0]heptane to saturated and unsaturated aldehydes and subsequent rearrangement.146148... [Pg.292]

Table 4. Cyclopentanones by Pinacol-Type Rearrangement of Cyclobutanones with oc-Lithio Selenoxides... Table 4. Cyclopentanones by Pinacol-Type Rearrangement of Cyclobutanones with oc-Lithio Selenoxides...
Methyl- or 2-ethyl-benzo[Z> ]thiophenes are conveniently prepared by treatment of 2-benzo[6]thienyllithium with the appropriate alkyl sulfate <70AHC(11)177). Clemmensen or Wolff-Kishner reductions of the 2-acylbenzo[Z>]thiophenes are useful, but since acylation produces a mixture of the 2- and 3-acyl isomers (Section 3.14.2.4), these must be separated. Cyclization of phenyl phenacyl sulfide with hydrofluoric acid leads exclusively to 2-phenyl-benzo[6]thiophene, and 3-phenylbenzo[6]thiophene can be rearranged to the 2-isomer in hydrofluoric acid (Section 3.15.2.3.2). Aromatization of 2-cycIohexenylbenzo[6]thiophene, obtained by condensation of the 2-lithio reagent with cyclohexanone, gives 2-phenyl-benzo[6]thiophene, and the reaction is adaptable to the 2-(l-naphthyl) derivative also. [Pg.915]


See other pages where Lithio, rearrangement is mentioned: [Pg.107]    [Pg.219]    [Pg.79]    [Pg.215]    [Pg.71]    [Pg.741]    [Pg.110]    [Pg.741]    [Pg.385]    [Pg.109]    [Pg.91]    [Pg.860]    [Pg.551]    [Pg.253]    [Pg.258]    [Pg.852]    [Pg.1006]    [Pg.1016]    [Pg.1142]    [Pg.1264]    [Pg.179]    [Pg.202]    [Pg.206]    [Pg.59]    [Pg.267]    [Pg.776]    [Pg.510]    [Pg.155]    [Pg.359]    [Pg.79]    [Pg.719]    [Pg.273]    [Pg.776]    [Pg.219]   
See also in sourсe #XX -- [ Pg.564 ]




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Lithio-epoxide, rearrangement

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