Q.Define the term electron gain enthalpy and explain its trends along the period and down the group.
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Start your 14-day free trial to unlock the full solution →Electron gain enthalpy = energy change on adding an electron to a gaseous atom; it generally increases in magnitude (more negative) across a period and decreases down a group.
Definition: Electron gain enthalpy (Delta-eg H) is the enthalpy change that occurs when one mole of electrons is added to one mole of isolated gaseous atoms of an element to form one mole of gaseous anions:
X(g) + e- -> X-(g), Delta-eg H
A negative value means energy is released (favourable electron addition); a positive value means energy must be supplied.
Trend across a period (left to right): Electron gain enthalpy generally becomes more negative (more exothermic, larger magnitude), because nuclear charge increases while atomic size decreases along a period, so the added electron is pulled in more strongly by a more concentrated positive charge. (Exception: noble gases have a large positive electron gain enthalpy, since the incoming electron must enter a new, higher-energy shell against a stable filled octet; elements with exactly half-filled or fully-filled subshells, such as N or the alkaline earths, also show a less negative value than expected because of the extra stability of that configuration.)
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