Q.Represent the Lewis structure of O3 molecule and assign the formal charge on each atom.
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Start your 14-day free trial to unlock the full solution →Ozone's resonance Lewis structure has a central oxygen double-bonded to one terminal O and single-bonded to the other; working out formal charge = (valence e⁻) − (non-bonding e⁻) − (½ bonding e⁻) for each atom gives +1 (centre), 0 (double-bonded O), and −1 (single-bonded O).
Lewis structure of O3:
Ozone (O3) is a bent, 3-atom molecule with a central oxygen atom bonded to two terminal oxygen atoms. One representative resonance structure is:
O(terminal, singly bonded, 3 lone pairs) — O(central, 1 lone pair) = O(terminal, doubly bonded, 2 lone pairs)
Written out: the central O forms one single bond to one terminal O and one double bond to the other terminal O, and carries one lone pair itself. The singly-bonded terminal O carries three lone pairs, and the doubly-bonded terminal O carries two lone pairs. (This satisfies the octet on all three atoms, and O3 is a resonance hybrid of two such equivalent structures, with the double bond alternating between the two terminal oxygens — the true structure is an average of both, but formal charges are calculated on one resonance form at a time.)
Formal charge formula: FC = (number of valence electrons in free atom) − (number of non-bonding/lone-pair electrons) − ½(number of bonding electrons)
For oxygen, valence electrons = 6.
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