Crystal field stabilization energy $(CFSE)$ for the complex $[Co(CN)_6]^{3-}$ will be:

  • A
    $-2.4 \, \Delta_0 + 3P$
  • B
    $+2.4 \, \Delta_0 + 3P$
  • C
    $-3.6 \, \Delta_0 + 3P$
  • D
    $-1.8 \, \Delta_0 + 3P$

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Similar Questions

Which of the following cannot be explained by crystal field theory?

Match the following complexes in List-$I$ with their electronic configurations in List-$II$.
List-$I$ (Complex)List-$II$ (Electronic configuration of metal/ion)
$A. [Co(NH_3)_6]^{3+}$$I. t_{2g}^5 e_g^0$
$B. [CoF_6]^{3-}$$II. t_{2g}^6 e_g^0$
$C. [Ni(CO)_4]$$III. t_{2g}^4 e_g^2$
$D. [Fe(CN)_6]^{3-}$$IV. t^4 e^6$

If the crystal field splitting energy of a tetrahedral complex $\Delta_t$ of the type $[ML_4]^{n+}$ is $x \ eV$,what is the crystal field splitting energy with respect to an octahedral complex,$[ML_6]^{n+}$?

The value of $CFSE$ in a tetrahedral complex having a $3d^4$ configuration of the metal ion,surrounded by strong field ligands,will be:

Which of the following has zero Crystal Field Stabilization Energy $(CFSE)$ value in an octahedral field?

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