Q.For the same period, is the first ionization enthalpy of a Group 2 element higher or lower than that of the neighbouring Group 1 element? Explain with the example of Na and Mg.
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Start your 14-day free trial to unlock the full solution →Sodium (, configuration ) and magnesium (, configuration ) are adjacent elements of the same period, both with their valence electron(s) in the shell. The only structural difference between them is that magnesium's nucleus carries one additional proton and its outer orbital holds two electrons rather than one.
Because both outer electrons of Mg occupy the same shell as Na's single outer electron, the extra unit of nuclear charge in Mg is not effectively shielded away by any new inner shell -- it acts almost directly on the outer electron(s), pulling the whole outer electron cloud in more tightly and making the atom (and the outer electron) harder to ionize. This is why Mg's first ionization enthalpy () is substantially higher than Na's (), even though both elements are in the same period and Mg is not much smaller than Na. …
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