Question

The charge required for the reduction of $1$ mol of $Mn{O}_4^{-}$ to $Mn{O}_2$ is

• A. 1 F
• B. 3 F
• C. 5 F
• D. 6 F

Answer 1

Answer: (B)

$Mn{O}_4^{-}+2H_{2}O+3e^{-}⟶Mn{O}_2+4O{H}^{-}$
In the above reduction requires flow of $3$ moles of electrons. So it required $3F$ charge.