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Among the second period elements the actual ionisation enthalpies are in the order `LiltBltBeltCltOltNltFltNe`. Explain why (a) Be has higher `Delta_(i)H` than `B` and (b) `O` has lower `Delta_(i)H` than `N` and `F`? |
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Answer» a. The IE, among other things, depends upon the type of electron to be removed from the same principal shell. In case of `Be(1s^(2)2s^(2))` the outermost electron is present in `2s`-orbital while in `B(1s^(2)2s^(2)2p^(1))` it is present in `2p`-orbital. Since `2s`-electrons are more strongly attracted by the nucleus than `2p`-electrons, Therefore, lesser amount of energy is required to remove a `2p-`electron than a `2p`-electron. Consequently, `IE_(1)` of `Be` is higher than that `IE_(1)` of `Be`. b. The valence electronic configuration of `N(2s^(2)2p_(x)^(1)2p_(y)^(1)2p_(z)^(1))` in which `2p`-orbitals are exactly half-filled is more stable than the valence electronic configuration of `(2s^(2)2p_(x)^(1)2p_(y)^(1)2p_(z)^(1))` in which the `2p`-orbitals are neither half-filled nor completely filled. Therefore, it is difficult to remove electron from `N` than from `O`. As a result, `IE_(1)` of `N` is higher than that of `O`. Further, the electronic configuration of `F` is `(1s^(2)2s^(2)2p_(x)^(2)2p_(y)^(2)2p_(z)^(1))`. Because of higher nuclear charge `(9)`, the first ionisation enthalpy of `F` is higher than that of `O`. Further, the effect of increased nuclear charge outweighs the effect of stability due to exactly half-fiiled orbitals, therefore, the `IE_(1)` of `N` and `O` are lower than that of `F`. |
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