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Zero Order Reactions - UNSOLVED PRACTICE SET

Class 12

Chapter: Chemical Kinetics | Topic: Zero Order Reactions

Study Material.
Class 12

ZERO ORDER REACTIONS - UNSOLVED PRACTICE SET

Topic: Zero Order Reactions

Time: 40 mins | Marks: 30 | Difficulty: Medium

Multiple Choice Questions

Q1. For a zero-order reaction, the rate of reaction is:

  1. Directly proportional to the concentration of the reactant
  2. Independent of the concentration of the reactant
  3. Inversely proportional to the concentration of the reactant
  4. Proportional to the square of the concentration

Q2. The integrated rate equation for a zero-order reaction is:

  1. k = (2.303/t) log([A]₀/[A])
  2. [A] = [A]₀ – kt
  3. 1/[A] = 1/[A]₀ + kt
  4. [A] = [A]₀e^(-kt)

Q3. The unit of rate constant for a zero-order reaction is:

  1. s⁻¹
  2. mol L⁻¹ s⁻¹
  3. L mol⁻¹ s⁻¹
  4. L² mol⁻² s⁻¹

Q4. For a zero-order reaction, a graph of [A] vs. time gives:

  1. A straight line passing through the origin
  2. A straight line with a negative slope and intercept [A]₀
  3. A curve
  4. A straight line with a positive slope

Q5. The half-life of a zero-order reaction is:

  1. Independent of initial concentration
  2. Directly proportional to initial concentration
  3. Inversely proportional to initial concentration
  4. Independent of the rate constant

Q6. An example of a zero-order reaction is:

  1. Decomposition of HI on a gold surface
  2. Radioactive decay
  3. Hydrolysis of ethyl acetate
  4. Decomposition of N₂O₅

Short Answer Questions

Q7. Write the rate law and integrated rate equation for a zero-order reaction. What is the unit of its rate constant?

Q8. For a zero-order reaction, derive the expression for half-life (t₁/₂) in terms of initial concentration [A]₀ and rate constant k.

Q9. Why does the half-life of a zero-order reaction decrease as the reaction progresses?

Q10. Draw a rough sketch of [A] vs. time for a zero-order reaction. Label the slope, intercept, and half-life on the graph.

Q11. The decomposition of NH₃ on a platinum surface is a zero-order reaction. Explain why the rate does not depend on the concentration of NH₃.

Q12. For a zero-order reaction, the concentration of reactant decreases from 0.50 M to 0.30 M in 20 minutes. Calculate the rate constant.

Long Answer Questions

Q13. Derive the integrated rate equation for a zero-order reaction: A → Products. Show that a plot of [A] vs. time is a straight line and explain how the rate constant can be determined from this graph.

Q14. (a) What are the characteristics of a zero-order reaction? List at least four.

(b) The decomposition of N₂O on a hot platinum surface is a zero-order reaction. Explain why this happens and write the rate law for this reaction.

Q15. (a) For a zero-order reaction, show mathematically that t₁/₂ = [A]₀ / 2k.

(b) If the initial concentration of a reactant in a zero-order reaction is 0.80 M and the rate constant is 4.0 × 10⁻² mol L⁻¹ min⁻¹, calculate:

(i) The half-life of the reaction

(ii) The time required for the concentration to drop to 0.20 M

(iii) The concentration after 30 minutes

Numerical / Application-Based Problems

Q16. For a zero-order reaction: A → Products, the rate constant is 2.0 × 10⁻² mol L⁻¹ s⁻¹. The initial concentration of A is 1.0 mol L⁻¹.

(a) Write the integrated rate equation.

(b) Calculate the concentration of A after 20 seconds.

(c) Calculate the time required for the reaction to be 80% complete.

(d) Calculate the half-life of the reaction.

Q17. The following data were obtained for a zero-order reaction:

Time (s)[A] (mol L⁻¹)
00.80
100.60
200.40
300.20

(a) Verify that this is a zero-order reaction by calculating the rate constant at different time intervals.

(b) Determine the rate constant from the graph (conceptually, describe how).

(c) Predict the concentration of A at t = 40 s.

(d) Calculate the half-life from the beginning and from t = 10 s. Are they the same? Explain.

Q18. In a photochemical reaction involving H₂ and Cl₂, the rate of formation of HCl is found to be independent of the concentration of Cl₂ as long as light is present. This suggests zero-order behavior with respect to Cl₂.

(a) Write the rate law for this reaction with respect to Cl₂.

(b) Explain why the rate is independent of [Cl₂] in the presence of light.

(c) If the rate constant is 1.5 × 10⁻³ mol L⁻¹ s⁻¹ and the initial [Cl₂] is 0.50 M, calculate how long it will take for the concentration of Cl₂ to drop to 0.10 M. (Assume zero order with respect to Cl₂.)


Total: 30 Marks | Time: 40 mins

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