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  2. Wittig reaction - Wikipedia

    en.wikipedia.org/wiki/Wittig_reaction

    The main limitation of the traditional Wittig reaction is that the reaction proceeds mainly via the erythro betaine intermediate, which leads to the Z-alkene. The erythro betaine can be converted to the threo betaine using phenyllithium at low temperature. [18] This modification affords the E-alkene. The Schlosser variant of the Wittig reaction

  3. Wittig reagents - Wikipedia

    en.wikipedia.org/wiki/Wittig_reagents

    For stabilized Wittig reagents bearing conjugated electron-withdrawing groups, even relatively weak bases like aqueous sodium hydroxide or potassium carbonate can be employed. [Ph 3 PCH 3] + Br −, typical phosphonium salt. The identification of a suitable base is often an important step when optimizing a Wittig reaction.

  4. Talk:Wittig reaction - Wikipedia

    en.wikipedia.org/wiki/Talk:Wittig_reaction

    In order to obtain the E-alkene, the Schlosser modification of the Wittig reaction can be performed." That agrees with the general description in the "Classical mechanism" section, which accompanies the mechanism leading to 7 (a Z form).

  5. 2,3-Wittig rearrangement - Wikipedia

    en.wikipedia.org/wiki/2,3-Wittig_rearrangement

    The [2,3]-Wittig rearrangement is the transformation of an allylic ether into a homoallylic alcohol via a concerted, pericyclic process.Because the reaction is concerted, it exhibits a high degree of stereocontrol, and can be employed early in a synthetic route to establish stereochemistry.

  6. 1,2-Wittig rearrangement - Wikipedia

    en.wikipedia.org/wiki/1,2-Wittig_rearrangement

    A 1,2-Wittig rearrangement is a categorization of chemical reactions in organic chemistry, and consists of a 1,2-rearrangement of an ether with an alkyllithium compound. [1] The reaction is named for Nobel Prize winning chemist Georg Wittig. [2] [3] The intermediate is an alkoxy lithium salt, and the final product an alcohol.

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