Skip to content
Question

Q.The reaction of an alkyl halide with sodium alkoxide forming ether is known as:
(A) Wurtz reaction
(B) Reimer-Tiemann reaction
(C) Williamson synthesis
(D) Kolbe reaction

CBSECBSE Class XII Board 2024MCQ· 1mImportance★★★★★
🔒 Locked · start free trial →

You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.

Start your 14-day free trial to unlock the full solution →

The reaction of an alkyl halide with a sodium alkoxide to form an ether is a classic example of nucleophilic substitution, specifically known as the Williamson ether synthesis. The correct option is (C).

The question describes a fundamental reaction in organic chemistry for synthesizing ethers. To understand why a specific name is associated with it, we need to break down the roles of the reactants and the type of transformation occurring.

Concept and Intuition: Nucleophilic Substitution for Ether Formation

Ethers have the general structure R−O−R′R-O-R', where RR and R′R' are alkyl or aryl groups. To form an ether, we need to create a new carbon-oxygen bond. One very effective way to do this is through a nucleophilic substitution reaction.

Imagine an alkyl halide, R−XR-X, where XX is a good leaving group (like Cl\text{Cl}, Br\text{Br}, I\text{I}). The carbon atom bonded to the halogen is partially positive (δ+\delta^+) because the halogen is electronegative. This makes the carbon an electrophilic center, meaning it's susceptible to attack by electron-rich species.

Now consider a sodium alkoxide, R′−O−Na+R'-O^- Na^+. The alkoxide ion (R′−O−R'-O^-) is a strong nucleophile because the oxygen atom carries a full negative charge and has lone pairs of electrons available to donate. It's also a strong base.

When these two species meet, the nucleophilic alkoxide oxygen attacks the electrophilic carbon of the alkyl halide, displacing the halide ion. This is a classic SN2S_N2 (bimolecular nucleophilic substitution) pathway, leading directly to the formation of an ether.

Step-by-Step Explanation

  1. Identify the Reactants and Product:

    • Alkyl halide: An organic compound with a halogen atom (XX) bonded to an alkyl group (RR). General formula: R−XR-X.
    • Sodium alkoxide: A salt formed from an alcohol and sodium, containing an alkoxide ion (R′−O−R'-O^-) and a sodium cation (Na+Na^+). General formula: R′−O−Na+R'-O^- Na^+.
    • Ether: An organic compound with an oxygen atom bonded to two alkyl or aryl groups. General formula: R−O−R′R-O-R'.
  2. Role of Reactants:

    • The alkoxide ion (R′−O−R'-O^-) acts as a strong nucleophile, seeking an electron-deficient center.
    • The alkyl halide (R−XR-X) acts as an electrophile, with the carbon atom bonded to the halogen being the site of nucleophilic attack. The halogen (XX) serves as a good leaving group.
  3. Mechanism of Reaction:

    The reaction proceeds via an SN2S_N2 mechanism. The alkoxide nucleophile attacks the carbon atom bearing the halogen from the backside, simultaneously displacing the halide ion. This is a concerted, one-step process.

R−X+R′−O−Na+⟶R−O−R′+NaXR-X + R'-O^- Na^+ \longrightarrow R-O-R' + NaX

For example, if we react bromoethane with sodium methoxide:

CH3CH2−Br+CH3−O−Na+⟶CH3CH2−O−CH3+NaBr\text{CH}_3\text{CH}_2-\text{Br} + \text{CH}_3-\text{O}^- \text{Na}^+ \longrightarrow \text{CH}_3\text{CH}_2-\text{O}-\text{CH}_3 + \text{NaBr}

(Bromoethane) + (Sodium methoxide) $\longrightarrow$ (Ethyl methyl ether) + (Sodium bromide) …

Unlock everything free for 14 days

  • Full step-by-step solutions
  • Concept-first explanations
  • Methods, shortcuts & mistakes
  • PYQ mapping + timed mock tests

Full access for 14 days. No credit card required.