Product of Reaction: Dimethyl Ketone + NaOH + Iodine

What is the product of this reaction?

The product of the reaction between Dimethyl Ketone (Acetone), Sodium Hydroxide, and an iodine source is Acetic Acid, Iodoform, Sodium Iodide, and Water.

Overview of the Reaction:

Dimethyl Ketone: Dimethyl Ketone, also known as Acetone, is a widely used organic solvent with a chemical formula CH3COCH3. Sodium Hydroxide (NaOH): Sodium Hydroxide is a strong base commonly used in various chemical reactions. Iodine Source (represented as '312'): In this reaction, the iodine source is represented as '312', which is typically used to introduce iodine into the reaction. Products Formed: The reaction results in the formation of Acetic Acid (CH3COOH), Iodoform (CHI3), Sodium Iodide (3 Nal), and Water (3 H2O).

Reaction Mechanism:

When Acetone reacts with NaOH in the presence of an iodine source, it undergoes a Haloform reaction. This type of reaction is characterized by the conversion of a methyl ketone into a carboxylic acid. The reaction can be represented as: Dimethyl Ketone + Sodium Hydroxide + Iodine source → Acetic Acid + Iodoform + Sodium Iodide + Water

Observations:

The reaction leads to the formation of distinct precipitates: - A white precipitate (Sodium Iodide) - A purple-red precipitate (Iodoform) - A yellow precipitate (Acetic Acid) The mention of a brown color in the reaction indicates the possible presence of impurities or side reactions, which may affect the purity and efficiency of the reaction. In conclusion, the combination of Dimethyl Ketone, Sodium Hydroxide, and an iodine source results in the formation of Acetic Acid, Iodoform, Sodium Iodide, and Water through a Haloform reaction. This chemical transformation demonstrates the reactivity of ketones with strong bases and iodine sources, yielding specific organic compounds with distinct properties.
← How to calculate stoichiometry in chemistry Phase equilibrium in a flask a professional perspective →