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Q.Define ionization enthalpy. Explain its trend in a group.
Jammu Kashmir JkboseJammu and Kashmir Board of School Education (Class 11) 2025Subjective· 3mImportance★★★★★
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Start your 14-day free trial to unlock the full solution →Ionization enthalpy is the energy needed to remove the most loosely held electron from a gaseous atom; it decreases down a group because atomic size and shielding both increase, weakening the nucleus's hold on the outer electron.
Definition: Ionization enthalpy (or ionization energy) is the minimum amount of energy required to remove the most loosely bound electron from an isolated gaseous atom in its ground state, converting it into a gaseous cation.
M(g) -> M+(g) + e^-
Trend in a group: Ionization enthalpy generally DECREASES on moving down a group.
Reason:
- On moving down a group, a new principal quantum shell is added at each step, so the atomic radius increases significantly.
- This increase in distance between the nucleus and the outermost (valence) electron weakens the electrostatic force of attraction holding that electron.
- Additionally, the number of inner (core) electron shells increases down the group, increasing the shielding/screening effect on the valence electron from the nuclear charge. …
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