Question:

Which of the following molecules has the highest bond angle?

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Bond angle depends on molecular geometry and lone pairs. Fewer lone pairs and planar structures generally lead to larger bond angles.
Updated On: Jun 3, 2025
  • \( \text{CH}_4 \)
  • \( \text{NH}_3 \)
  • \( \text{H}_2\text{O} \)
  • \( \text{BF}_3 \)
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The Correct Option is D

Solution and Explanation

Step 1: Determine the molecular geometry.
  • \( \text{CH}_4 \): Tetrahedral — bond angle \(109.5^\circ\)
  • \( \text{NH}_3 \): Trigonal pyramidal — bond angle \(107^\circ\)
  • \( \text{H}_2\text{O} \): Bent — bond angle \(104.5^\circ\)
  • \( \text{BF}_3 \): Trigonal planar — bond angle \(120^\circ\)
Step 2: Compare bond angles.
Among these, the trigonal planar geometry of \( \text{BF}_3 \) gives the largest bond angle of \(120^\circ\).
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