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Q.Account for the following:

(a) Ionization enthalpy of nitrogen is more than oxygen.
(b) Electron gain enthalpy of fluorine is lesser than chlorine.
Jammu Kashmir JkboseJammu and Kashmir Board of School Education (Class 11) 2024Subjective· 3mImportance★★★★★
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Nitrogen's extra-stable half-filled 2p3 configuration makes it harder to ionize than oxygen; fluorine's small size causes strong inter-electronic repulsion on gaining an electron, making its electron gain enthalpy less negative than chlorine's.

(a) Ionization enthalpy of nitrogen is more than oxygen: Nitrogen (Z=7) has the electronic configuration 1s2 2s2 2p3, with the 2p subshell exactly half-filled (one electron each in px, py, pz). A half-filled subshell has extra stability due to its symmetrical distribution of electrons and maximum exchange energy. Oxygen (Z=8) has configuration 1s2 2s2 2p4, meaning one of the 2p orbitals now has two paired electrons. These two electrons in the same orbital repel each other more strongly (inter-electronic repulsion), making it comparatively easier to remove one of them. As a result, less energy is needed to remove an electron from oxygen than from nitrogen's extra-stable half-filled configuration, so IE(N) > IE(O), even though oxygen is to the right of nitrogen in the period (where IE would normally be expected to increase).

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