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Chemistry Question on Electrochemistry

Standard electrode potential data are useful for understanding the suitability of an oxidant in a redox titration. Some half-cell reactions and their standard potentials are given below : MnO4(aq)+8H+(aq)+5eMn2+(aq)+4H2O(l),E=1.51VMnO^- _4(aq)+8H^+ (aq)+5e^- \longrightarrow Mn^{2+} (aq)+4H_2 O(l), E^\circ = 1.51\, V Cr2O72(aq)+14H+(aq)+6e2Cr3+(aq)+7H2O(l),E=1.38VCr_2O^{2-} _7(aq)+14H^+ (aq)+6e^- \longrightarrow 2Cr^{3+} (aq)+7H_2 O(l), E^\circ = 1.38\, V \hspace20mm Fe^{3+} (aq)+e^- \longrightarrow Fer^{2+} (aq) \, \, \, \, E^\circ=0.77\, V \hspace20mm Cl_2 (g)+2e^- \longrightarrow 2Cl^{-} (aq) \, \, \, \, E^\circ=1.40\, V Identify the incorrect statement regarding the quantitative estimation of aqueous Fe(NO3)2Fe(NO_3)_2

A

MnO4MnO^- _4 can be used in aqueous HCl

B

Cr2O72Cr_2O^{2-} _7 can be used in aqueous HCl

C

MnO4MnO^- _4 can be used in aqueous H2SO4H_2 SO_4

D

Cr2O72Cr_2O^{2-} _7 can be used in aqueous H2SO4H_2 SO_4

Answer

MnO4MnO^- _4 can be used in aqueous HCl

Explanation

Solution

MnO4MnO^- _4 cannot be used for oxidation of Fe2+Fe^{2+} in HCl medium because the following reaction is spontaneous :
MnO4+ClMn2++Cl2;E=1.511.40=0.11VMnO^- _4 +Cl^- \longrightarrow Mn^{2+} \, +Cl_2; \, \, \, \, E^\circ=1.51-1.40=0.11\, V
In all other cases, the redox process between oxidising agent and medium (HCl(HCl or H2SO4) H_2 SO_4) are non-spontaneous, would not interfere oxidation of Fe2+Fe^{2+}.