Out of H and H2, H has higher first ionisation energy while out of O and O2, O2 has higher first ionisation energy. Explain why?
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Out of ${H}$ and ${H}_2, {H}$ has higher first ionisation energy while out of ${O}$ and ${O}_2, {O}_2$ has higher first ionisation energy. Explain why?

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In ${H}_2$, first electron is removed from $\sigma(1 s)$ which has lower energy than $1 s$-orbital of ${H}$-atom. However, in ${O}_2$, first electron is removed either from $\pi^*\left(2 p_y\right)$ or $\pi^*\left(2 p_x\right)$ orbital which has higher energy than $2 p$-orbital of O-atom.

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