Oxidation and Reduction of Carbonyls

Aldehydes and ketones both contain the carbonyl functional group (\(\text{C=O}\)). However, their differing chemical environments lead to distinct behaviors when treated with oxidizing and reducing agents. This lesson covers how to oxidize aldehydes, how to reduce both types of carbonyls using sodium tetrahydridoborate(III) (\(\text{NaBH}_4\)), and how to carry out chemical tests to distinguish them in the laboratory.

1. Oxidation of Aldehydes and Ketones

Aldehydes have a hydrogen atom attached to the carbonyl carbon atom (\(\text{R-CHO}\)). This hydrogen atom makes them highly susceptible to oxidation. When heated under reflux with an oxidizing agent, aldehydes are converted into carboxylic acids:

\[ \text{RCHO} + \text{[O]} \rightarrow \text{RCOOH} \]

The standard laboratory reagent for this oxidation is acidified potassium dichromate(VI), \(\text{K}_2\text{Cr}_2\text{O}_7 / \text{H}_2\text{SO}_4\). During the reaction, the orange dichromate(VI) ions (\(\text{Cr}_2\text{O}_7^{2-}\)) are reduced to green chromium(III) ions (\(\text{Cr}^{3+}\)).

Ketones have two alkyl groups attached to the carbonyl carbon (\(\text{R-CO-R}'\)). Because there is no hydrogen atom directly bonded to the carbonyl carbon, ketones cannot be oxidized without breaking a strong carbon-carbon single bond. Consequently, ketones resist oxidation under standard laboratory conditions. The mixture remains orange when heated with acidified potassium dichromate(VI).

2. Chemical Tests to Distinguish Carbonyls

The difference in ease of oxidation is exploited to distinguish between aldehydes and ketones in qualitative tests using mild oxidizing agents:

Test 1: Tollens' Reagent (The Silver Mirror Test)

When Tollens' reagent is warmed with an aldehyde, the aldehyde is oxidized to a carboxylate ion, and the silver(I) complex ions are reduced to metallic silver. The silver deposits on the inner wall of the test tube, forming a reflective silver mirror:

\[ \text{Ag(NH}_3\text{)}_2^+(\text{aq}) + \text{e}^- \rightarrow \text{Ag(s)} + 2\text{NH}_3(\text{aq}) \]

Ketones do not react, and the solution remains clear and colorless.

Test 2: Fehling's Solution

When Fehling's solution is warmed with an aldehyde, the copper(II) complex ions oxidize the aldehyde and are reduced to copper(I) oxide. The color changes from a clear blue solution to a brick-red precipitate:

\[ 2\text{Cu}^{2+}(\text{aq}) + 2\text{OH}^-(\text{aq}) + 2\text{e}^- \rightarrow \text{Cu}_2\text{O(s)} + \text{H}_2\text{O(l)} \]

Ketones do not react, and the solution remains clear blue.

3. Reduction of Aldehydes and Ketones

Aldehydes and ketones can be reduced back to alcohols using sodium tetrahydridoborate(III), \(\text{NaBH}_4\), in aqueous solution. In these equations, the reducing agent is represented by the symbol [H].

• Aldehydes are reduced to primary alcohols:
  \[ \text{RCHO} + 2\text{[H]} \rightarrow \text{RCH}_2\text{OH} \]
• Ketones are reduced to secondary alcohols:
  \[ \text{RCOR}' + 2\text{[H]} \rightarrow \text{RCH(OH)R}' \]

Mechanism: Nucleophilic Addition (Reduction)

The reduction occurs via a nucleophilic addition mechanism. The tetrahydridoborate ion (\(\text{BH}_4^-\)) acts as a source of hydride ions (\(\text{H}^-\)). The hydride ion has a lone pair of electrons and acts as the nucleophile.

The steps of the mechanism are as follows:

1. Attack on the carbonyl carbon: The hydride ion (\(\text{H}^-\)) attacks the electron-deficient carbonyl carbon (\(\text{C}^{\delta+}\)). Simultaneously, the polar \(\text{C=O}\) \(\pi\) bond breaks, with both electrons shifting to the oxygen atom. This forms a negatively charged alkoxide intermediate.
2. Protonation: The lone pair of electrons on the negatively charged oxygen atom of the intermediate attacks a hydrogen atom in a water molecule (or a hydrogen ion from water), protonating the intermediate to form the final alcohol and regenerating a hydroxide ion (\(\text{OH}^-\)).