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Q.In general, electron gain enthalpy of elements becomes less negative down a group. However, electron gain enthalpy of F is less negative than that of the succeeding element. Explain why.

Assam AhsecAHSEC Higher Secondary (HS) 1st Year Examination 2023Subjective· 2mImportance★★★★★
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F's abnormally small size means the extra electron entering its compact 2p subshell faces strong inter-electron repulsion, making its electron gain enthalpy less negative than Cl's, despite the general trend of EGE becoming less negative down a group.

Generally, electron gain enthalpy (EGE) becomes less negative on descending a group because atomic size increases and the added electron experiences a weaker effective nuclear attraction (it is added farther from the nucleus).

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