Q.Using molecular orbital theory, write the electronic configuration of , calculate its bond order, and explain why is diamagnetic while is paramagnetic.
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Start your 14-day free trial to unlock the full solution →Nitrogen contributes 5 valence electrons per atom, so has 10 valence electrons. For (lighter than ), the correct energy ordering places the pair below : . Filling 10 electrons in order gives — every orbital up to and including is completely filled, and none of the antibonding or orbitals receive any electrons at all. Counting bonding electrons (, total ) and antibonding electrons ( only, total ), the bond order is , matching the triple bond. Every orbital in this configuration is completely filled (no singly-occupied orbitals anywhere), so all electrons are paired and is diamagnetic. The contrast with arises purely because has two more electrons than $\text{N}_ …
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