Why do the following reactions proceed differently? $Pb_{3}O_{4} + 8HCl \rightarrow 3PbCl_{2} + Cl_{2} + 4H_{2}O$ and $Pb_{3}O_{4} + 4HNO_{3} \rightarrow 2Pb(NO_{3})_{2} + PbO_{2} + 2H_{2}O$
(N/A) $Pb_{3}O_{4}$ is a stoichiometric mixture of $2 \ mol$ of $PbO$ and $1 \ mol$ of $PbO_{2}$. In $PbO_{2}$,lead is in the $+4$ oxidation state,while in $PbO$,it is in the $+2$ oxidation state.
$PbO_{2}$ acts as an oxidizing agent and can oxidize the $Cl^{-}$ ion of $HCl$ to $Cl_{2}$. The reaction with $HCl$ is a combination of an acid-base reaction $(2PbO + 4HCl \rightarrow 2PbCl_{2} + 2H_{2}O)$ and a redox reaction $(PbO_{2} + 4HCl \rightarrow PbCl_{2} + Cl_{2} + 2H_{2}O)$.
In contrast,$HNO_{3}$ is itself an oxidizing agent,so it does not react with $PbO_{2}$. The reaction with $HNO_{3}$ is limited to the acid-base reaction between $PbO$ and $HNO_{3}$: $2PbO + 4HNO_{3} \rightarrow 2Pb(NO_{3})_{2} + 2H_{2}O$. The $PbO_{2}$ remains as a residue,making the overall reaction different.
$PbO_{2}$ acts as an oxidizing agent and can oxidize the $Cl^{-}$ ion of $HCl$ to $Cl_{2}$. The reaction with $HCl$ is a combination of an acid-base reaction $(2PbO + 4HCl \rightarrow 2PbCl_{2} + 2H_{2}O)$ and a redox reaction $(PbO_{2} + 4HCl \rightarrow PbCl_{2} + Cl_{2} + 2H_{2}O)$.
In contrast,$HNO_{3}$ is itself an oxidizing agent,so it does not react with $PbO_{2}$. The reaction with $HNO_{3}$ is limited to the acid-base reaction between $PbO$ and $HNO_{3}$: $2PbO + 4HNO_{3} \rightarrow 2Pb(NO_{3})_{2} + 2H_{2}O$. The $PbO_{2}$ remains as a residue,making the overall reaction different.
Explore More
Similar Questions
Justify that the following reactions are redox reactions:
$(a) \ CuO_{(s)} + H_{2(g)} \to Cu_{(s)} + H_2O_{(g)}$
$(b) \ Fe_2O_{3(s)} + 3CO_{(g)} \to 2Fe_{(s)} + 3CO_{2(g)}$
$(c) \ 4BCl_{3(g)} + 3LiAlH_{4(s)} \to 2B_2H_{6(g)} + 3LiCl_{(s)} + 3AlCl_{3(s)}$
$(d) \ 2K_{(s)} + F_{2(g)} \to 2K^+F^-_{(s)}$
$(e) \ 4NH_{3(g)} + 5O_{2(g)} \to 4NO_{(g)} + 6H_2O_{(g)}$
$(a) \ CuO_{(s)} + H_{2(g)} \to Cu_{(s)} + H_2O_{(g)}$
$(b) \ Fe_2O_{3(s)} + 3CO_{(g)} \to 2Fe_{(s)} + 3CO_{2(g)}$
$(c) \ 4BCl_{3(g)} + 3LiAlH_{4(s)} \to 2B_2H_{6(g)} + 3LiCl_{(s)} + 3AlCl_{3(s)}$
$(d) \ 2K_{(s)} + F_{2(g)} \to 2K^+F^-_{(s)}$
$(e) \ 4NH_{3(g)} + 5O_{2(g)} \to 4NO_{(g)} + 6H_2O_{(g)}$
Medium
View Solution$KMnO_4$ oxidises $I^{-}$ in acidic and neutral/faintly alkaline solution,respectively to
DifficultJEE MAIN 2023
View SolutionWhen $KMnO_4$ solution is titrated with a solution containing $Fe^{2+}$ ions,the indicator used in this titration is
MediumAIIMS 1996
View SolutionMatch the reactions in Column $I$ with the nature of the reactions/type of the products in Column $II$.
Column $I$ Column $II$ $A$. $O_2^{-} \rightarrow O_2 + O_2^{2-}$ $p$. redox reaction $B$. $CrO_4^{2-} + H^{+} \rightarrow$ $q$. one of the products has trigonal planar structure $C$. $MnO_4^{-} + NO_2^{-} + H^{+} \rightarrow$ $r$. dimeric bridged tetrahedral metal ion $D$. $NO_3^{-} + H_2SO_4 + Fe^{2+} \rightarrow$ $s$. disproportionation
| Column $I$ | Column $II$ |
| $A$. $O_2^{-} \rightarrow O_2 + O_2^{2-}$ | $p$. redox reaction |
| $B$. $CrO_4^{2-} + H^{+} \rightarrow$ | $q$. one of the products has trigonal planar structure |
| $C$. $MnO_4^{-} + NO_2^{-} + H^{+} \rightarrow$ | $r$. dimeric bridged tetrahedral metal ion |
| $D$. $NO_3^{-} + H_2SO_4 + Fe^{2+} \rightarrow$ | $s$. disproportionation |
In order to oxidize a mixture of one mole of each of $FeC_2O_4$,$Fe_2(C_2O_4)_3$,$FeSO_4$ and $Fe_2(SO_4)_3$ in acidic medium,the number of moles of $KMnO_4$ required is
Vedclass Products
For Students
Vedclass Test Series
Mock tests in real JEE/NEET style with performance analysis. 5-day free trial.
Start Free TrialFor Teachers
Exam Paper Generator
Generate Set A/B/C/D exam papers from 7.5L+ questions in 2 minutes. 3 chapters free.
Try FreeFor Institutes
Online Exam Module
Live online exams with unlimited students, 360° analytics & white-label branding.
See Demo