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General Science25 Essential Exam Concepts
Electronegativity vs Electron Affinity GK Facts, Periodic Trends & Chemistry Guide
In modern atomic physics and inorganic chemistry, understanding how elements interact, share charge, and stabilize chemical bonds requires differentiating between two foundational atomic properties: Electronegativity and Electron Affinity. While both properties reflect the electrostatic tendency of an atomic nucleus to attract negative electrons, they operate under fundamentally different physical conditions. Electronegativity describes the relative pulling power of an atom to attract shared electron pairs toward itself within an established chemical bond, whereas Electron Affinity measures the quantitative energetic change when an electron is added to an isolated, neutral gaseous atom to form a univalent negative ion.
Electronegativity is an empirical, dimensionless property rather than an absolute energetic metric. Introduced in 1932 by American chemist Linus Pauling, electronegativity relies on the Pauling Scale, which assigns relative numerical values ranging from approximately 0.7 for highly electropositive alkali metals (such as Francium and Cesium) up to 4.0 for Fluorine, the most electronegative element in the periodic table. Alternative quantitative scales include the Mulliken Scale (formulated in 1934 by Robert Mulliken as the mathematical arithmetic mean of an atom's ionization energy and electron affinity) and the Allred-Rochow Scale (based on the electrostatic force exerted by effective nuclear charge on valence electrons). Across the periodic table, electronegativity increases from left to right across a period due to increasing effective nuclear charge and contracting atomic radius, and decreases down a group due to the addition of principal electron shells and screening effects.
In contrast, Electron Affinity (Eeaâ, closely related to Electron Gain Enthalpy DeltaegâH) is an experimentally measurable thermodynamic quantity expressed in physical units of kilojoules per mole (kJ/mol) or electron-volts per atom (eV/atom). It corresponds to the reaction X(g)+eââXâ(g). When an incoming electron experiences net attraction to the atomic nucleus, energy is discharged, yielding an exothermic electron affinity. A classic periodic anomaly tested in competitive examinations occurs between the halogen elements Fluorine and Chlorine: while Fluorine possesses the highest electronegativity, Chlorine exhibits the greatest electron affinity of all elements (â349Â kJ/mol compared to Fluorine's â328Â kJ/mol). This occurs because Fluorine's extremely compact 2p subshell creates intense interelectronic repulsion that partially counteracts nuclear attraction, whereas Chlorine's larger 3p orbital accommodates the incoming electron with less internal repulsion.
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