- A$[Cr(H_2O)_6]^{3+}$
- ✓$[Fe(H_2O)_6]^{2+}$
- C$[Cu(H_2O)_6]^{2+}$
- D$[Zn((H_2O)_6]^{2+}$
The oxidation number of $Cr$ is $+3$
Atomic number $=24$
$Cr =[ Ar ] 3 d ^5 4 s ^1$
$Cr ^{3+}=[ Ar ] 3 d ^3 4 s ^0$
There are three unpaired electrons.
$\left[ Fe \left( H _2 O \right)_6\right]^{2+}$
The oxidation number of $Fe$ is $+2$.
Atomic number $=26$
$Fe =[ Ar ] 3 d ^6 4 s ^2$
$Fe ^{2+}=[ Ar ] 3 d ^6 4 s ^0$
There are four unpaired electrons
$\left[ Cu \left( H _2 O \right)_6\right]^{2+}$
The oxidation number of $Cu$ is $+2$.
Atomic number $=29$
$Cu =[ Ar ] 3 d ^{10} 4 s ^1$
$Cu ^{2+}=[ Ar ] 3 d ^9 4 s ^0$
There is one unpaired electron.
$\left[ Zn \left( H _2 O \right)_6\right]^{2+}$
The oxidation number of $Zn$ is $+2$.
Atomic number $=30$
$Zn =[ Ar ] 3 d ^{10} 4 s ^2$
$Zn ^{2+}=[ Ar ] 3 d ^{10} 4 s ^0$
There are no unpaired electrons.
$\left[ Fe \left( H _2 O \right)_6\right]^{2+}$ has the maximum number of unpaired electrons; therefore, the highest degree of paramagnetism.
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| Initial $[A_2]$ | Initial $[B_2]$ | $R.O.R.\,(r)\,Ms^{-1}$ |
| $0.2$ | $0.2$ | $0.04$ |
| $0.1$ | $0.4$ | $0.04$ |
| $0.2$ | $0.4$ | $0.08$ |
Order of reaction with respect to $A_2$ and $B_2$ are respectively
$\mathop {Al}\limits_{Metal} \xrightarrow{{HCl(aq.)}}'X' + Gas\,'P'$
$\mathop {Al}\limits_{metal} \xrightarrow[{ + {H_2}O}]{{NaOH\,(aq.)}}'Y' + Gas\,'Q'$