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Q.O2 is Paramagnatic nature. Why?

Rajasthan RbseRajasthan Board Senior Secondary Part-I Examination 2022Subjective· 2mImportance★★★★★
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O2 is paramagnetic because its molecular orbital configuration has two unpaired electrons.

A simple Lewis dot structure of O2 (O=O, with all electrons paired) wrongly predicts that oxygen should be diamagnetic. Molecular Orbital Theory gives the correct picture. The MO electronic configuration of O2 (16 electrons) is: sigma1s2 sigma1s2 sigma2s2 sigma2s2 sigma2pz2 pi2px2 pi2py2 pi2px1 pi2py1.

The last two electrons go into the two degenerate (equal-energy) antibonding pi* orbitals (pi2px and pi2py). By Hund's rule, these two electrons occupy the two separate orbitals singly (with parallel spins) rather than pairing up in one orbital. This leaves O2 with two unpaired electrons.

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