What is the correct order for energy of d orb | vedclass

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(C) The complex ion $[NiCl_4]^{2-}$ is a tetrahedral complex.In a tetrahedral crystal field,the $d$ orbitals split into two sets: a lower energy set $

Vedclass · Accepted Answer

$d_{x^2-y^2} \cong d_{z^2} < d_{xy} \cong d_{yz} \cong d_{xz}$

Vedclass · Answer

(C) The complex ion $[NiCl_4]^{2-}$ is a tetrahedral complex.In a tetrahedral crystal field,the $d$ orbitals split into two sets: a lower energy set $(d_{xy}, d_{yz}, d_{xz})$ and a higher energy set $(d_{x^2-y^2}, d_{z^2})$.However,the splitting pattern for tetrahedral complexes is the inverse of octahedral complexes.In tetrahedral geometry,the $d_{xy}, d_{yz}, d_{xz}$ orbitals (often denoted as $t_2$) are higher in energy than the $d_{x^2-y^2}, d_{z^2}$ orbitals (often denoted as $e$).Therefore,the correct order of energy is $d_{x^2-y^2} \cong d_{z^2} < d_{xy} \cong d_{yz} \cong d_{xz}$.

List-$I$ (Coordination entity)	List-$II$ (Wavelength of light absorbed in $nm$)
$A$. $[CoCl(NH_3)_5]^{2+}$	$I$. $310$
$B$. $[Co(NH_3)_6]^{3+}$	$II$. $475$
$C$. $[Co(CN)_6]^{3-}$	$III$. $535$
$D$. $[Cu(H_2O)_4]^{2+}$	$IV$. $600$

What is the correct order for energy of $d$ orbitals during splitting in the $[NiCl_4]^{2-}$ complex ion?

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