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Q.What is Ionization Enthalpy? Name the factors on which it depends. How does it vary along a period and down a group?
Jammu Kashmir JkboseJammu and Kashmir Board of School Education (Class 11) 2020Subjective· 3mImportance★★★★★
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Start your 14-day free trial to unlock the full solution →Ionization enthalpy is the minimum energy needed to remove the most loosely bound electron from an isolated gaseous atom. It increases across a period and decreases down a group, governed mainly by nuclear charge, atomic size, and shielding.
Definition: Ionization enthalpy (IE1) is the minimum amount of energy required to remove the most loosely bound electron from an isolated gaseous atom in its ground state, forming a cation: M(g) → M+(g) + e-.
Factors it depends on:
- Nuclear charge - a higher effective nuclear charge pulls electrons more strongly, increasing ionization enthalpy.
- Atomic radius - the farther an electron is from the nucleus, the weaker the attraction, so larger atoms have lower ionization enthalpy.
- Shielding/screening effect - inner-shell electrons shield outer electrons from the full nuclear charge; more shielding lowers ionization enthalpy.
- Electronic configuration/stability - atoms with completely filled or exactly half-filled subshells (extra stable, e.g. noble gases, or N with half-filled 2p3) have unusually high ionization enthalpy.
- Penetration effect - for a given shell, s-electrons penetrate closer to the nucleus than p, d, or f electrons and are held more tightly. …
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