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Multiple Choice
Which of the following molecules is most likely to have an angular (bent) molecular geometry?
A
SiCl_4
B
H_2O
C
H_2CO
D
NH_3
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Verified step by step guidance
1
Identify the central atom in each molecule and determine the number of electron groups (bonding and lone pairs) around it using the Lewis structure.
Recall that molecular geometry depends on the arrangement of bonding pairs and lone pairs around the central atom according to VSEPR theory (Valence Shell Electron Pair Repulsion).
For each molecule, count the number of bonding pairs and lone pairs on the central atom:
- SiCl_4 has 4 bonding pairs and 0 lone pairs.
- H_2O has 2 bonding pairs and 2 lone pairs.
- H_2CO has 3 bonding pairs and 0 lone pairs.
- NH_3 has 3 bonding pairs and 1 lone pair.
Conclude that the molecule with an angular (bent) molecular geometry is the one with 2 bonding pairs and 2 lone pairs on the central atom, which is H_2O.