Chemical Kinetics MCQs With Answers – Part 3 (Class 12 Chemistry)
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Chemical Kinetics MCQs with Answers – Part 3 (Class 12 Chemistry)

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201. The overall reaction has overall order \(2\), and its balanced equation is \[ A+B\rightarrow P \] Which conclusion is safest?
ⓐ. The reaction must be a bimolecular elementary step because the coefficient sum is \(2\)
ⓑ. The agreement alone does not establish an elementary step
ⓒ. The molecularity must be zero because the measured overall order is not a mechanism
ⓓ. The mechanism must contain exactly two steps because the overall order equals \(2\)
202. A complex reaction differs from an elementary reaction because a complex reaction:
ⓐ. must involve only one reactant
ⓑ. always has fractional molecularity
ⓒ. cannot possess an experimentally measurable rate
ⓓ. proceeds through two or more elementary steps
203. A mechanism contains the steps: \[ A+X\rightarrow AX \] \[ AX+B\rightarrow P+X \] Which description of \(X\) is most suitable?
ⓐ. \(X\) is an intermediate because it is formed before it is consumed
ⓑ. \(X\) is a catalyst because it is consumed and later regenerated
ⓒ. \(X\) is a product because it appears on the right of the second step
ⓓ. \(X\) is a reactant consumed in the overall equation
204. Use the consecutive steps shown below. \[ 2A\rightarrow I \] \[ I+B\rightarrow 2P \] The overall reaction and the molecularity of the first step are:
ⓐ. \(2A+B\rightarrow2P\), unimolecular
ⓑ. \(A+B\rightarrow2P\), bimolecular
ⓒ. \(2A+B\rightarrow2P\), bimolecular
ⓓ. \(2A+I+B\rightarrow I+2P\), termolecular
205. A proposed mechanism is: \[ A+B\rightleftharpoons I \qquad \text{fast} \] \[ I+C\rightarrow P \qquad \text{slow} \] Writing \(r=k[I][C]\) as the final experimentally usable rate law is incomplete because:
ⓐ. The rate law of a slow step can never contain the concentration of an intermediate
ⓑ. Intermediate \(I\) must be eliminated using a relation involving measurable species
ⓒ. \(C\) is an overall product and must therefore be removed from every kinetic expression
ⓓ. The slow step should be ignored and the fast step alone should be used as the final rate law
206. Match each term in Column I with its description in Column II.
Column IColumn II
P. Elementary step1. Species formed and later consumed
Q. Intermediate2. Sequence of elementary steps
R. Reaction mechanism3. Single molecular event
S. Rate-determining step4. Step that limits the overall rate in a simple mechanism
ⓐ. P-2, Q-1, R-3, S-4
ⓑ. P-3, Q-1, R-2, S-4
ⓒ. P-3, Q-4, R-2, S-1
ⓓ. P-1, Q-3, R-4, S-2
207. The following mechanism is proposed: \[ A\rightarrow I+B \qquad \text{slow} \] \[ I+C\rightarrow D \qquad \text{fast} \] The overall equation and predicted simple rate law are:
ⓐ. \(A+C\rightarrow B+D\) and \(r=k[A]\)
ⓑ. \(A+I+C\rightarrow I+B+D\) and \(r=k[I][C]\)
ⓒ. \(A+C\rightarrow B+D\) and \(r=k[A][C]\)
ⓓ. \(A\rightarrow I+B\) and \(r=k[C]\)
208. Complete the missing species so that it behaves as an intermediate. \[ A+B\rightarrow \underline{\hspace{1cm}} \] \[ \underline{\hspace{1cm}}+C\rightarrow P \]
ⓐ. \(A\)
ⓑ. \(P\)
ⓒ. \(I\)
ⓓ. \(C\)
209. The slowest step in a simple consecutive mechanism is often compared with a narrow section of a pipeline because:
ⓐ. the narrow section limits the overall flow
ⓑ. every molecule must remain permanently in the slow step
ⓒ. the faster steps stop occurring completely
ⓓ. the slow step changes the equilibrium constant
210. A reaction-coordinate profile for a proposed mechanism contains two energy maxima separated by one minimum. The profile most naturally represents:
ⓐ. one elementary step with no intermediate
ⓑ. three elementary steps with two intermediates
ⓒ. two overall reactions occurring at equilibrium
ⓓ. two elementary steps with one intermediate
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