97P

Question

Which of these ions cannot form both high- spin and low-spin octahedral complexes: (a) ${Mn}^{3 +};$ (b) ${Nb}^{3 +};$ (c)^{${Ru}^{3 +};$} (d) ${Ni}^{2 +}$

Step-by-Step Solution

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Answer

Nb3+ and Ni2+ cannot form both high-spin and low-spin complexes.

1Unpaired electrons

High-spin and low spin octahedral complexes are possible to form only when the number of d electrons is 4, 5, 6 or 7. The metal ions with 1, 2 or 3 d electrons always form high-spin complexes because of no need for pairing up electrons. The metal ions with 8 or 9 d electrons will always form high-spin complexes because low energy d orbitals are filled with 6 electrons and higher energy d orbitals will have one or two unpaired electrons $d^{8}$ or $d^{9} .$

2Electronic configuration

Electron configuration of $M n^{3 +} : 1 s^{2} 2 s^{2} 2 p^{6} 3 s^{2} 3 p^{6} 3 d^{4};$ so, the $M n^{3 +}$ metal ion can form both high-spin and low-spin octahedral complexes, because it has 4d electrons.

Electron configuration of $N b^{3 +} : 1 s^{2} 2 s^{2} 2 p^{6} 3 s^{2} 3 p^{6} 3 d^{10} 4 s^{2} 4 p^{6} 4 d^{2}$ so, the ${Nb}^{3 +}$ metal ion can form only high-spin octahedral complexes, because it has 2d electrons.

Electron configuration of $R u^{3 +} : 1 s^{2} 2 s^{2} 2 p^{6} 3 s^{2} 3 p^{6} 3 d^{10} 4 s^{2} 4 p^{6} 4 d^{5}$ so, the $R u^{3 +}$ metal ion can form both high-spin and low-spin octahedral complexes, because it has 5d electrons.

Electron configuration of ${Ni}^{2 +} : 1 s^{2} 2 s^{2} 2 p^{6} 3 s^{2} 3 p^{6} 3 d^{8}$ so, the ${Ni}^{2 +}$ metal ion can form only high-spin octahedral complexes, because it has 8 d electrons.

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