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22.4: Alpha Bromination of Carboxylic Acids

  • Page ID
    36415
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    Objectives

    After completing this section, you should be able to

    1. write an equation to illustrate the Hell‑Volhard‑Zelinskii reaction.
    2. identify the product formed from the reaction of a given carboxylic acid with bromine and phosphorus tribromide.
    3. identify the carboxylic acid, the reagents, or both, needed to synthesize a given α‑bromo carboxylic acid.
    4. outline the stereochemical implications of the fact that the Hell‑Volhard‑Zelinskii reaction proceeds through the formation of an acid bromide enol.
    Key Terms

    Make certain that you can define, and use in context, the key term below.

    • Hell‑Volhard‑Zelinskii reaction
    Study Notes

    The reagents for the Hell‑Volhard‑Zelinskii reaction are given as bromine and phosphorus tribromide. In some questions, you may observe that only bromine and phosphorus are listed as reagents. Really there is no difference, as phosphorus tribromide would be formed in situ by the combination of bromine and red phosphorus:

    \[\ce{3BR2 + 2P → 2PBr3} \nonumber \]

    Excess bromine is required to ensure that enough reagent is available for the reaction with the enol.

    Hell-Volhard-Zelinskii Reaction

    Although the α-bromination of some carbonyl compounds, such as aldehydes and ketones, can be accomplished with Br2 under acidic conditions, the reaction will generally not occur with carboxylic acids, esters, and amides. Carboxylic acids do not enolize to a sufficient extent since the carboxylic acid proton is preferably removed before an α-hydrogen. However, carboxylic acids, can be brominated in the α-position with a mixture of Br2 and phosphorus tribromide (PBr3) in what is called the Hell-Volhard-Zelinskii reaction.

    HVZ General Reaction.png

    Mechanism

    Mechanism.png

    This reaction is the combination of three separate reaction mechanisms all of which have been previously discussed. The mechanism starts with the reaction of the carboxylic acid with PBr3 to form an acid bromide and HBr. Formation of an acid bromide is vital to this reaction because they lack the acidic carboxylic acid proton and can enolize much more readily making α-bromination possible. Next, HBr catalyzes the tautomerization of the acid bromide into its enol tautomer, acid bromide enol, which subsequently reacts with Br2 to give α-bromination. Lastly, the product undergoes nucleophilic acyl substitution which cause the hydrolysis of the acid bromide to reform the carboxylic acid and the HBr catalyst. Because an enol intermediate is formed, this reaction will form a racemic mixture at the α-carbon.

    Examples

    Example 1.png

    Example 2.png

    Further Reactions of α-Bromo Carboxylic Acids

    α-Bromo carboxylic acids are extremely useful synthetic intermediates because the halogen is highly reactive towards SN2 reactions. Having the electrophilic carbon of the carbonyl adjacent to the electrophilic α-carbon attached to the bromine allows an incoming nucleophile to share its charge between the two. This stabilizes the transition state of the SN2 reaction, lowering the energy of activation, and increasing reaction rates. Primary α-Halogenated carbonyls have SN2 reaction rates which are much greater than the corresponding primary aliphatic halogens.

    Further Reactions Mechanism.svg

    Because bromides are capable of reacting with a wide variety of nucleophiles, α-bromo carboxylic acids serve as important intermediates. Reaction of α-bromo carboxylic acids with an aqueous basic solution followed by an acidic work-up produces α-hydroxy carboxylic acids. Reaction of α-bromo carboxylic acids with an excess of ammonia provides α-amination, which provides a possible route to amino acids.

    Further reactions A.png

    Further Reactions B.png

    Example

    Example 3.png

    Exercises

    1) Explain why the following reaction occurs.

    Question 1.png

    2) Draw the products of the following reactions:

    a)

    Question 2.png

    b)

    Question 2 B.png

    Solutions

    1) The first step represents the beginning of the Hell-Volhard-Zelinskii reaction which provides a-bromination and creates and acid bromide intermediate. The second step adds methanol which reacts with the acid bromide to produce an ester.

    Answer 1.png

    2)

    a)

    Answer 2 A.png

    b)


    22.4: Alpha Bromination of Carboxylic Acids is shared under a CC BY-SA 4.0 license and was authored, remixed, and/or curated by Steven Farmer, Dietmar Kennepohl, Layne Morsch, & Layne Morsch.