Redox Reactions MCQs | Again 100 Questions | Chemistry-11
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Redox Reactions MCQs with Answers – Part 3 (Class 11 Chemistry)

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211. In \( \mathrm{2H_2O_2 \rightarrow 2H_2O + O_2} \), oxygen undergoes disproportionation. The oxidation-number changes of oxygen are:
ⓐ. \(-1\rightarrow-2\) and \(-1\rightarrow0\)
ⓑ. \(-2\rightarrow-1\) and \(-2\rightarrow0\)
ⓒ. \(0\rightarrow-1\) and \(0\rightarrow-2\)
ⓓ. \(+1\rightarrow0\) and \(+1\rightarrow-2\)
212. Study the table and identify the disproportionation reaction.
RowReactionKey oxidation-number pattern
P\( \mathrm{Zn + Cu^{2+} \rightarrow Zn^{2+} + Cu} \)\( \mathrm{Zn}:0\rightarrow+2 \), \( \mathrm{Cu}:+2\rightarrow0 \)
Q\( \mathrm{Cl_2 + 2OH^- \rightarrow Cl^- + ClO^- + H_2O} \)\( \mathrm{Cl}:0\rightarrow-1 \) and \(0\rightarrow+1\)
R\( \mathrm{NaCl + AgNO_3 \rightarrow AgCl + NaNO_3} \)no oxidation-number change
S\( \mathrm{HCl + NaOH \rightarrow NaCl + H_2O} \)no oxidation-number change
ⓐ. Row P
ⓑ. Row R
ⓒ. Row S
ⓓ. Row Q
213. The oxidation state of an element in a disproportionation reaction is usually intermediate because:
ⓐ. it must already be the maximum possible value
ⓑ. it must already be the minimum possible value
ⓒ. it must be able to increase and also decrease
ⓓ. it must be zero in every disproportionation reaction
214. For \( \mathrm{3NO_2 + H_2O \rightarrow 2HNO_3 + NO} \), nitrogen undergoes disproportionation. What are the oxidation numbers of nitrogen in \( \mathrm{NO_2} \), \( \mathrm{HNO_3} \), and \( \mathrm{NO} \), respectively?
ⓐ. \(+4, +5, +2\)
ⓑ. \(+5, +4, +2\)
ⓒ. \(+4, +2, +5\)
ⓓ. \(+2, +5, +4\)
215. The reaction \( \mathrm{2Cu^+ \rightarrow Cu^{2+} + Cu} \) is a disproportionation reaction because:
ⓐ. copper changes from \(0\) to \(+1\) only
ⓑ. copper is only reduced from \(+2\) to \(0\)
ⓒ. copper changes from \(+1\) to \(+2\) and \(0\)
ⓓ. copper remains at \(+1\) throughout the reaction
216. A graph shows oxidation number of one element during a reaction.
The reactant point is at \(+4\). Two product branches are drawn: one branch rises to \(+5\), and another branch falls to \(+2\).
The graph best represents:
ⓐ. simple oxidation only
ⓑ. simple reduction only
ⓒ. disproportionation
ⓓ. precipitation without redox
217. Assertion: \( \mathrm{2H_2O_2 \rightarrow 2H_2O + O_2} \) is a disproportionation reaction. Reason: Oxygen in \( \mathrm{H_2O_2} \) has oxidation number \(-1\), and it changes to both \(-2\) and \(0\).
ⓐ. Both Assertion and Reason are true, but Reason does not explain Assertion
ⓑ. Both Assertion and Reason are true, and Reason explains Assertion
ⓒ. Assertion is true, but Reason is false
ⓓ. Assertion is false, but Reason is true
218. The reaction \( \mathrm{Cl_2 + H_2O \rightarrow HCl + HClO} \) shows chlorine:
ⓐ. only reduced from \(0\) to \(-1\) in both chlorine products
ⓑ. only oxidised from \(0\) to \(+1\) in both chlorine products
ⓒ. unchanged at \(0\) in both chlorine-containing products
ⓓ. reduced in \( \mathrm{HCl} \) and oxidised in \( \mathrm{HClO} \)
219. In \( \mathrm{Cl_2 + 2OH^- \rightarrow Cl^- + ClO^- + H_2O} \), what fraction of chlorine atoms is oxidised?
ⓐ. \( \frac{1}{4} \)
ⓑ. \( \frac{1}{2} \)
ⓒ. \( \frac{1}{3} \)
ⓓ. \(1\)
220. A reaction note says:
An element \( \mathrm{E} \) in oxidation state \(+3\) forms two products. In one product, \( \mathrm{E} \) has oxidation state \(+5\); in the other, \( \mathrm{E} \) has oxidation state \(+1\).
The note describes:
ⓐ. acid-base neutralisation
ⓑ. disproportionation
ⓒ. single displacement
ⓓ. ionic precipitation
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