If equal volumes of 1 M KMnO4 and 1 M K2Cr2O7 solutions are allowed to oxidise Fe(II) to Fe(III) in acidic medium, then Fe (II) oxidised will be

Question

If equal volumes of 1 M KMnO4 and 1 M K2Cr2O7 solutions are allowed to oxidise Fe(II) to Fe(III) in acidic medium, then Fe (II) oxidised will be (A) more by KMnO4 (B) more by K2Cr2O7 (C) equal in both the cases (D) can’t be determined

Tardigrade Admin · Accepted Answer

5 Fe 2+ MnO 4Θ+8 H ⊕ arrow 5 Fe 3++4 H 2 O + Mn 2+ 6 Fe 2++ Cr 2 O 72-+14 H ⊕ arrow 6 Fe 3++7 H 2 O +2 Cr 3+ From these reactions, it can be seen that Fe (II) will be oxidised more by K 2 Cr 2 O 7

Q. If equal volumes of $1 M K M n O_{4}$ and $1 M K_{2} C r_{2} O_{7}$ solutions are allowed to oxidise $F e (II)$ to $F e (III)$ in acidic medium, then $F e (II)$ oxidised will be

more by $K M n O_{4}$

more by $K_{2} C r_{2} O_{7}$

equal in both the cases

can’t be determined

$5 F e^{2 +} M n O_{4}^{Θ} + 8 H^{\oplus} \to 5 F e^{3 +} + 4 H_{2} O + M n^{2 +}$
$6 F e^{2 +} + C r_{2} O_{7}^{2 -} + 14 H^{\oplus} \to 6 F e^{3 +} + 7 H_{2} O + 2 C r^{3 +}$
From these reactions, it can be seen that $F e$ (II) will be oxidised more by $K_{2} C r_{2} O_{7}$

Q. If equal volumes of 1MKMnO4​ and 1MK2​Cr2​O7​ solutions are allowed to oxidise Fe(II) to Fe(III) in acidic medium, then Fe(II) oxidised will be

more by KMnO4​

more by K2​Cr2​O7​