UP Board Class 11 Chemistry Chapter 7 Redox Reactions Multiple Choice Questions
Question 1. Which of die following substances undergo disproportionation reactions in the basic medium
- F2
- P4
- S2
- Br2
Answer: 2,3,4
Question 2. In which of the following compounds, the oxidation number of oxygen is fractional
- B4O10
- B2H6
- CSO2
- KO3
Answer: 1,3,4
Question 3. Wlien Cl2 is passed through NaOH in the cold, the oxidation number of changes from
- 0 to -1
- 0 to +2
- 0 to -2
- 0 to -1
Answer: 1,2
Question 4. In which of the following cases equivalent mass of a reductant is equal to its molecular mass
1. \(\mathrm{Cr}_2 \mathrm{O}_7^{2-}+6 \mathrm{I}^{-}+14 \mathrm{H}^{+} \rightarrow 2 \mathrm{Cr}^{3+}+3 \mathrm{I}_2+7 \mathrm{H}_2 \mathrm{O}\)
2. \(\mathrm{MnO}_4^{-}+5 \mathrm{Fe}^{2+}+8 \mathrm{H}^{+} \rightarrow 5 \mathrm{Fe}^{3+}+\mathrm{Mn}^{2+}+4 \mathrm{H}_2 \mathrm{O}\)
3. \(2 \mathrm{Na}_2 \mathrm{~S}_2 \mathrm{O}_3+\mathrm{I}_2 \rightarrow \mathrm{Na}_2 \mathrm{~S}_4 \mathrm{O}_6+2 \mathrm{NaI}\)
4. \(\mathrm{MnO}_4^{-}+5 \mathrm{C}_2 \mathrm{O}_4^{2-}+16 \mathrm{H}^{+} \rightarrow \mathrm{Mn}^{2+}+10 \mathrm{CO}_2+8 \mathrm{H}_2 \mathrm{O}\)
Answer: 2,3
Question 5. Identify the redox reactions
- 2CuSO4 + 4KI→2CuI + I2 + 2K2SO4
- BaCl2 + Na2SO4→BaSO4 + 2NaGl
- 3I2 + 6NaOH→NaIO3 + 5Nal + 3H2O
- CuSO4 + 4NH3→[Cu(NH3)4]SO4
Answer: 1,3
Question 6. When ammonium nitrate is heated, the oxidation numbers of the N-atoms present it change from
- -3 to +1
- -3 to 0
- -2 to +4
- +5 to 0
Answer: 2,4
Question 7. For the reaction, \(2 \mathrm{~S}_2 \mathrm{O}_3^{2-}+\mathrm{I}_2 \rightarrow \mathrm{S}_4 \mathrm{O}_6^{2-}+2 \mathrm{I}^{-}-\)
1. \(\mathrm{S}_2 \mathrm{O}_3^{2-} \text { gets oxidised to } \mathrm{S}_4 \mathrm{O}_6^{2-}\)
2. \(\mathrm{S}_2 \mathrm{O}_3^{2-} \text { gets reduced to } \mathrm{S}_4 \mathrm{O}_6^{2-}\)
3. I2 gets oxidized to I¯
4. I2 gets reduced to I¯
Answer: 1,4
Question 8. Which of the following statements about the following reaction is wrong
2Cu2O + Cu2s→6cu + SO2
- Both Cu2O and cu2s are reduced
- Only Cu2s are reduced
- Cu2s is the oxidation
- Only cu2O is reduced
Answer: 2,3,4
Question 9. Which of the following orders represents the correct descending order of oxidation numbers
- HNO2 > NO > NH4Cl > N2
- HNO3 > NO > N2 > NH2Cl
- H2S2O7 > Na2S2O3 > Na2S4O6 > S8
- H2SO5 > H2SO3 > SCl2 > H2S
Answer: 2,4
Question 10. Which ofthe following reactions are not reactions
1. SO2(g) +H2O(f) H2SO3(aq)
2. Ca(s) + H2(g) → CaH2(s)
3. 2H2S(aq) + SO2(g)→2H20(l) + 3S(s)
4. \(\begin{aligned}
2 \mathrm{PCl}_5(g)+ & \mathrm{H}_2 \mathrm{SO}_4(a q) \longrightarrow \\
& 2 \mathrm{POCl}_3(a q)+2 \mathrm{HCl}(a q)+\mathrm{SO}_2 \mathrm{Cl}_2(g)
\end{aligned}\)
Answer: 1,4
Question 11. In which compounds do Cr exist +6 oxidation state
- CrO2Cl2
- Na2[Cr(CN)6]
- CrO5
- K2Cr2O7
Answer: 1,3,4
Question 12. When ammonium nitrite (NH2NO2) is heated
- Oxidation of nitrogen takes place
- Reduction of nitrogen takes place
- The overall reaction is a disproportionation reaction
- The overall reaction is a double decomposition reaction
Answer: 1,2,3
Question 13. In which compounds does an atom exist in two different oxidation states
- H2SO5
- NH4NO3
- Fe2O3
- H2O2
Answer: 1,2
Question 14. In the balanced equation for the reaction—
⇒ \(\mathrm{H}_2 \mathrm{SO}_4+x \mathrm{HI} \rightarrow \mathrm{H}_2 \mathrm{~S}+y \mathrm{I}_2+z \mathrm{H}_2 \mathrm{O}\)
- x=y-z
- y=z
- x=2y
- z=2x
Answer: 2,3
Question 15. In the reaction,
⇒ \(\mathrm{KMnO}_4+\mathrm{Na}_2 \mathrm{~S}_2 \mathrm{O}_3+\mathrm{H}_2 \mathrm{O} \rightarrow \mathrm{MnO}_2+\mathrm{SO}_4^{2-}+\mathrm{OH}^{-}\)
(Assume formula masses of KMnO2 and Na2S2O3 M1 and M2 respectively)—
- The equivalent mass of KMnO2 = M1/3
- The equivalent mass of Na2S2O3 = M2
- The equivalent mass of KMnO4 = M1/5
- The equivalent mass of Na2S2O2 = M2/8
Answer: 1,4
Question 16. In the balanced equation for the reaction,
⇒ \(\mathrm{UO}^{2+}+\mathrm{Cr}_2 \mathrm{O}_7^{2-}+\mathrm{H}^{+} \rightarrow \mathrm{UO}_2^{2+}+\mathrm{Cr}^{3+}+\mathrm{H}_2 \mathrm{O}\) the coefficient of-
- UO2+
- \(\mathrm{UO}_2^{2+} \text { is } 3\)
- \(\mathrm{Cr}_2 \mathrm{O}_7^{2-} \text { is } 1\)
- H2O is 7
Answer: 2,3,4
Question 17. The disproportionation of 1 mol of \(\mathrm{MnO}_4^{2-}\) ions in a neutral aqueous solution results in
- 1/3 mol of MnO¯4
- 2/3 mol of MnO2
- 2/3 mol of MnO4
- 1/3 mol of MnO2
Answer: 3,4
Question 18. In the reaction the oxidation number of marked with (*)-
- Increases by 2 units
- Increases by 1 unit
- Decreases by 2 units
- Decreases by 3 units
Answer: 1,3
Question 19. For the reaction: SO2 + 2H2S→3S + 2H2O
- The equivalent mass of the oxidant is 64
- Equivalent mass ofoxidantis 16
- The number of electrons accepted oxidant is 4
- The number of electrons lost by reductant is 6
Answer: 2,3
Question 20. The species that cannot be reducing agents are
- SO3
- \(\mathrm{SO}_3^{2-}\)
- H2SO4
- S2-
Answer: 1,3
Question 21. Which are conserved all redox reactions
- Charge
- Mass
- Either charger or Mass
- Neither charge nor mass
Answer: 1,2
Question 22. The equivalent weight of K2Cr2O7 in an acidic medium is expressed in terms of its molecular weight (M) as
- \(\frac{M}{3}\)
- \(\frac{M}{4}\)
- \(\frac{M}{6}\)
- \(\frac{M}{7}\)
Answer: 3. \(\frac{M}{6}\)
In an acidic medium, K2Cr2O7 undergoes reduction, forming a Cr3+ ion.
⇒ \(\mathrm{Cr}_2 \mathrm{O}_7^{2-}+14 \mathrm{H}^{+}+6 e \rightarrow 2 \mathrm{Cr}^{3+}+7 \mathrm{H}_2 \mathrm{O}\)
In this reaction, the equivalent weight of K2Cr2O7
⇒ \(=\frac{\text { Molecular weight of } \mathrm{K}_2 \mathrm{Cr}_2 \mathrm{O}_7}{\begin{array}{c}
\text { No of electrons gained by a molecule of } \mathrm{K}_2 \mathrm{Cr}_2 \mathrm{O}_7 \\
\text { in its reduction }
\end{array}}=\frac{M}{6}\)
Question 23. If Cl2 is passed through hot aqueous NaOH, the products formed have Cl in different oxidation states. These are indicated as
- -1 and +1
- -1 and +5
- -1 and +5
- -1 and +3
Answer: 2. -1 and +5
Reaction: Cl2 + 6NaOH→NaCl + 5NaC1O3 + 3H2O The oxidation number of Cl in NaCl is -1 and that in NaCIO3 is +5.
Question 24. In an aqueous alkaline solution, two-electron reductions of HO‾2 give—
- HO‾
- H2O
- O2
- O‾2
Answer: 1. HO‾
Question 25. Consider the following reactions
⇒ \(x \mathrm{MnO}_4^{-}+y \mathrm{C}_2 \mathrm{O}_4^{2-}+z \mathrm{H}^{+} \rightarrow x \mathrm{Mn}^{2+}+2 y \mathrm{CO}_2+\frac{z}{2} \mathrm{H}_2 \mathrm{O}\)
The values of x, y, and z in the reaction are respectively
- 5,2 And 8
- 5,2 and 16
- 2,5 and 8
- 2,5 and 16
Answer: 4. 2,5 and 16
⇒ \({\left[\mathrm{MnO}_4^{-}+8 \mathrm{H}^{+}+5 e \rightarrow \mathrm{Mn}^{2+}+4 \mathrm{H}_2 \mathrm{O}\right] \times 2}\)
⇒ \(\frac{\left[\mathrm{C}_2 \mathrm{O}_4^{2-} \rightarrow 2 \mathrm{CO}_2+2 e\right] \times 5}{2 \mathrm{MnO}_4^{-}+5 \mathrm{C}_2 \mathrm{O}_4^{2-}+16 \mathrm{H}^{+} \rightarrow 2 \mathrm{Mn}^{2+}+10 \mathrm{CO}_2+8 \mathrm{H}_2 \mathrm{O}}\)
∴ x=2, y=5 and z=16
Question 26. In which of the following reactions, H2O2 acts as a reducing agent-
- H2O2 + 2H+ + 2e→2H2O
- H2O2-2e→ O2 + 2H+
- H2O2 + 2e→2OH¯
- H2O2 + 2OH¯-2e→O2 + 2H2O
Choose the correct option
- 2,4
- 1,2
- 3,4
- 1,3
Answer: 1. 2,4
In the reaction, H2O2 → O2 + 2H+ + 2e, electrons are lost by H2O2 and hence H2O2 acts as a reductant. In the reaction, H2O2+2OH¯→ O2 + 2H2O + 2e, electrons are lost by H2O2 and hence H2O2 acts as a reductant.
Question 27. The Pair in which phosphorus atoms have a formal oxidation state of +3 is-
- Orthophosphoric and Pyrophosphoric acid
- Pyrophosphorus and Hypophosphoric acid
- Orthophosphoric and Hypophosphoric acid
- Pyrophosphorus and Pyrophosphoric acid
Answer: 1. Orthophosphorus and pyrophosphoric acid
Orthophosphoric acid: \(\begin{aligned}
& +1+3-2 \\
& \mathrm{H}_3 \mathrm{PO}_3
\end{aligned}\)
Pyrophosphorus acid:
Let the oxidation number of P in pyrophosphoric acid be x.
So, 4(+1) + 2x + 5(-2) = 0
or, 2x = 6 or, x = +3
Question 28. Which of the following reactions is an example of a redox creation:
- XeFG + H2O→XeOF4 + 2HF
- XeF6 + 2H2O→XeO2F2 + 4HF
- XeF4 +O2F4→XeF6 + O2
- XeF2 + PF5→[XeF]+[PF6]-
Answer: 3. XeF4 + O2F4→XeF6 + O2
⇒ \(\stackrel{+6-1}{\mathrm{XeF}_6}+\mathrm{H}_2 \stackrel{-2}{\mathrm{O}} \rightarrow \mathrm{XeOF}_4^{-2-1}+2 \mathrm{HF}\)
⇒ \(\stackrel{+6}{\mathrm{XeF}_6-1}+2 \mathrm{H}_2 \stackrel{-2}{\mathrm{O}} \xrightarrow[\rightarrow]{+6} \mathrm{XeO}_2^{-2-1} \mathrm{~F}_2+4 \mathrm{HF}\)
⇒ \(\stackrel{+2}{\mathrm{XeF}_2^{-1}}+\stackrel{+5-1}{\mathrm{PF}_2^{-1}} \rightarrow\left[\stackrel{+2}{\mathrm{XeF}} \mathrm{F}^{-1}\right]\left[\mathrm{PF}_6^{-1}\right]\)
For these reactions, there is no change in the oxidation number of the respective elements. So these reactions are not redox reactions.
⇒ \(\stackrel{+4}{\mathrm{XeF}_4}+\stackrel{+4}{\mathrm{O}_2} \mathrm{~F}_4^{-1} \rightarrow \stackrel{+6}{\mathrm{X}} \mathrm{XeF}_6-\stackrel{0}{\mathrm{O}}_2\)
Question 29. The oxidation states of Cr in [Cr(H2O) ]Cl3 [Cr(C6HG)2] and K2[Cr(CN2)(0)2(O2)(NH3)] respectively are
- +3,+4 and +6
- +3,+2 and +4
- +3,0 and +6
- +3,0 and +4
Answer: 3. +3,0 and +6
⇒ \(\left[\stackrel{+3}{\mathrm{Cr}}\left(\mathrm{H}_2 \mathrm{O}\right)_6\right] \mathrm{Cl}_3,\left[\stackrel{0}{\mathrm{Cr}}\left(\mathrm{C}_6 \mathrm{H}_6\right)_2\right]\)
In K2[Cr(CN)2(O2)(0)2(NH3)] compound, let, the oxidation number of Cr be x.
or, 2 + X-2-4-2 + 0
or, x = +6
Question 30. A mixture of potassium, Oxalic acid, and sulphuric acid is heated. During the reaction which element undergoes maximum change in the oxidation number-
- S
- H
- Cl
- C
Answer: 3. Cl
Question 31. In which of the following compounds, nitrogen exhibits the highest oxidation state—
- N2H4
- NH3
- N3H
- NH2OH
Answer: 3. N3H
⇒ \(\stackrel{-2}{\mathrm{~N}_2} \mathrm{H}_4, \stackrel{-3}{\mathrm{~N}} \mathrm{H}_3, \stackrel{-1 / 3}{\mathrm{~N}} \mathrm{H}_3 \mathrm{H}, \stackrel{-1}{\mathrm{~N}} \mathrm{H}_2 \mathrm{OH}\)
Question 32. In acidic medium, H2O2 changes \(\mathrm{Cr}_2 \mathrm{O}_7^{2-}\) to CrO5 which has two (—0—0— ) bonds. The oxidation state of Cr in CrO5 is-
- +5
- +3
- +6
- -10
Answer: 3. +6 let the oxidation number of Cr in CrO5 be x
Question 33.
- H2O2 + O3 →H2O + 2O2
- H2O2 + Ag2O→ 2Ag + H2O + O2
The role of hydrogen peroxide in the above reactions is respectively—
- Oxidisingin (1) and reducing (2)
- Reducing (1) and oxidising (2)
- Reducing (1) and (12)
- Oxidisingin (1) and (2)
Answer: 3. Reducing (1) and (12)
⇒ \(\mathrm{H}_2 \stackrel{-1}{\mathrm{O}}_2+\stackrel{0}{\mathrm{O}}_3 \rightarrow \mathrm{H}_2 \mathrm{O}+2 \stackrel{0}{\mathrm{O}}_2\)
In this reaction, H2O2 undergoes oxidation and forms O2. Hence, it acts as a reductant
Question 34. Assuming complete ionization, the same moles of which of the following compounds will require the least amount of acidified KMnO4 for complete oxidation—
- FeSO4
- FeSO3
- FeC2O4
- Fe(NO2)2
Answer: 1. FeSO4 will require the least amount of acidified KMnO4 for complete oxidation.
Question 35. Hot concentrated sulphuric acid is a moderately strong oxidizing agent. Which of the following reactions does not show oxidizing behavior-
- Cu + 2H2SO4→CuSO4 + SO2 + 2H2O
- S + 2H2SO4→3SO2 + 2H2O
- C + 2H2SO4→CO2 + 2SO2 + 2H2O
- CaF2 + H2SO4→CaSO4 + 2HF
Answer: 4. CaF2 + H2SO4→CaSO4 + 2HF
In this reaction, there is no change in the oxidation number of any elements, present. Thus, it is not a redox reaction.
Question 76. For the redox reaction
⇒ \(\mathrm{MnO}_4^{-}+\mathrm{C}_2 \mathrm{O}_4^{2-}+\mathrm{H}^{+} \rightarrow \mathrm{Mn}^{2+}+\mathrm{CO}_2+\mathrm{H}_2 \mathrm{O}\)
The correct coefficients of the reactants for the balanced equation are:
- 16,5,2
- 2,5,16
- 2,16,5
- 5,16,2
Answer: 2. 2,5,16
⇒ \({\left[\mathrm{MnO}_4^{-}+8 \mathrm{H}^{+}+5 e \rightarrow \mathrm{Mn}^{2+}+4 \mathrm{H}_2 \mathrm{O}\right] \times 2}\)
⇒ \({\left[\mathrm{C}_2 \mathrm{O}_4^{2-} \rightarrow 2 \mathrm{CO}_2+2 e\right] \times 5}\)
⇒ \(2 \mathrm{MnO}_4^{-}+5 \mathrm{C}_2 \mathrm{O}_4^{2-}+16 \mathrm{H}^{+} \rightarrow \mathrm{Mn}^{2+}+10 \mathrm{CO}_2+8 \mathrm{H}_2 \mathrm{O}\)
Question 77. When KMnO4 reacts with KBr in an alkaline medium and gives a bromate ion, the oxidation state of Mn changes from +7 to
- +6
- +4
- +3
- +2
Answer: 2. +4
⇒ \(2 \mathrm{MnO}_4^{-}+\mathrm{Br}^{-}+\mathrm{H}_2 \mathrm{O} \rightarrow 2 \stackrel{+4}{2} \mathrm{MnO}_2+\mathrm{BrO}_3^{-}+2 \mathrm{OH}^{-}\)
Question 38. K2Cr2O7 in an acidic medium converts into
- Cr2+
- Cr2+
- Cr4+
- Cr5+
Answer: 2. Cr2+
Question 39. The oxidation state of iron in hemoglobin is
- 0
- +2
- -2
- +3
Answer: 2. +2
Question 40. What is the oxidation number of Br in KBrO2
- +6
- +7
- +5
- +8
Answer: 2. +7
Question 41. Substances that are oxidized and reduced in the following reaction are respectively—
⇒ \(\mathrm{N}_2 \mathrm{H}_4(l)+2 \mathrm{H}_2 \mathrm{O}_2(l) \rightarrow \mathrm{N}_2(g)+4 \mathrm{H}_2 \mathrm{O}(l)\)
- N2H4H2O
- N2H4H2O2
- N2H2O2
- H2O2N2
Answer: 2. N2H4H2O2