Concept: Nickel in these complexes has oxidation state \(+2\). \[ Ni^{2+} : 3d^8 \] The number of unpaired electrons depends on ligand strength and geometry.
Step 1: Analyse complex A \[ [Ni(NH_3)_6]^{2+} \] Octahedral complex. Electronic configuration in crystal field: \[ t_{2g}^{6} e_g^{2} \] Number of unpaired electrons: \[ n = 2 \]
Step 2: Analyse complex B \[ [NiCl_4]^{2-} \] Weak field ligand \(Cl^-\) produces tetrahedral complex. Electronic configuration: \[ e^{4} t_2^{4} \] Number of unpaired electrons: \[ n = 2 \]
Step 3: Analyse complex C \[ [Ni(en)_3]^{2+} \] Strong field ligand \(en\), octahedral complex. Configuration: \[ t_{2g}^{6} e_g^{2} \] Number of unpaired electrons: \[ n = 2 \] Thus for A, B, C: \[ 2,\,2,\,2 \]
Step 4: Order of absorbed radiation Crystal field splitting depends on ligand strength. Ligand strength order: \[ en > NH_3 > Cl^- \] Higher splitting means higher frequency of absorbed radiation. \[ C > A > B \] Thus correct option: \[ \boxed{2,2,2 \text{ and } C > A > B} \]
What will be the equilibrium constant of the given reaction carried out in a \(5 \,L\) vessel and having equilibrium amounts of \(A_2\) and \(A\) as \(0.5\) mole and \(2 \times 10^{-6}\) mole respectively?
The reaction : \(A_2 \rightleftharpoons 2A\)
