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Q.
The effective atomic number for $\left[R h\left(H_{2} O\right)_{6}\right]^{3+}$ (at. no. for $R h$ is $45$ ) is
J & K CETJ & K CET 2012Coordination Compounds
Solution:
The effective atomic number for $\left[R h\left(H_{2} O\right)_{6}\right]^{3+}$
(atomic no. of $R h=45$ ) is $54$ .
Because rhodium is in oxidation state
$x+6 \times 0=+3$
$x=+3$
$R h^{3+}=45-3=42$
$42+12$ electrons from $6$ ligands
$\left(H_{2} O\right)=54$ electrons.