What this quiz covers
This quiz focuses on Reaction Rates, giving you a quick way to practice the rules, question types, and explanations that matter most for College Chemistry.
The decomposition of nitrogen dioxide follows the reaction: 2NO2(g)→2NO(g)+O2(g). In a 2.0 L container at 300°C, the concentration of NO2 decreases from 0.80 M to 0.60 M over a 45-second period. What is the average rate of formation of O2 during this time interval?
College Chemistry Quiz
Practice Reaction Rates in College Chemistry with focused quiz questions that help you check what you know, review explanations, and build confidence with test-style prompts.
This quiz focuses on Reaction Rates, giving you a quick way to practice the rules, question types, and explanations that matter most for College Chemistry.
Try each quiz question before looking at the correct answer. Use the explanations to review missed ideas, then come back to similar questions until the pattern feels familiar.
The decomposition of nitrogen dioxide follows the reaction: 2NO2(g)→2NO(g)+O2(g). In a 2.0 L container at 300°C, the concentration of NO2 decreases from 0.80 M to 0.60 M over a 45-second period. What is the average rate of formation of O2 during this time interval?
For the reaction A+2B→C, the rate law is rate=k[A][B]2. If the concentration of A is doubled while the concentration of B is halved, how does the new reaction rate compare to the original rate?
A first-order reaction has a half-life of 20.0 minutes. What fraction of the original reactant remains after 60.0 minutes?
A second-order reaction has a rate constant of 0.25 M−1s−1 at 25°C. If the initial concentration of the reactant is 0.80 M, what is the concentration after 10.0 seconds?
For the elementary reaction 2A+B→C, which of the following statements about the rate law is correct?
A catalyst is added to a reaction system. Which of the following correctly describes the effect of the catalyst on the reaction?
The decomposition of hydrogen peroxide follows first-order kinetics with a rate constant of 3.0×10−4 s−1 at 20°C. How long will it take for 75% of the original H2O2 to decompose?
The rate-determining step of a reaction mechanism is Step 2: X+Y→Z (slow), which follows Step 1: A+B⇌X+C (fast equilibrium). If the concentration of A is tripled while all other concentrations remain constant, what happens to the overall reaction rate?
For the reaction sequence A→B→C, where both steps are first-order with rate constants k1=0.10 s−1 and k2=0.050 s−1, which statement best describes the concentration of intermediate B over time?
The reaction A→products shows the following kinetic data when the concentration of A is plotted in different ways. Which plot indicates that the reaction is second-order in A?
The concentration of reactant X decreases from 1.20 M to 0.30 M over 150 seconds in a reaction that follows first-order kinetics. What is the rate constant for this reaction?
A reaction has a half-life of 25 minutes when the initial concentration is 0.80 M, and a half-life of 50 minutes when the initial concentration is 0.40 M. What is the order of this reaction?
The reaction N2O5→N2O4+21O2 follows first-order kinetics. If 80% of the original N2O5 remains after 100 seconds, what is the rate constant for this reaction?
For a reaction with rate law rate=k[A]2[B], the initial rate is 2.0×10−3 M/s when [A]=0.20 M and [B]=0.30 M. What is the value of the rate constant k?
The rate of disappearance of reactant X in the reaction 3X→2Y+Z is measured as 6.0×10−3 M/s. What is the rate of appearance of product Y?
At 25°C, a certain reaction has a rate constant of 2.5×10−4 s−1. At 35°C, the rate constant is 7.5×10−4 s−1. What is the activation energy for this reaction? (R = 8.314 J/mol·K)
The reaction 2A→B+C follows second-order kinetics in A. If the initial concentration of A is 0.50 M and the rate constant is 0.20 M−1s−1, what is the half-life of this reaction?
For a zero-order reaction, the concentration of reactant A decreases from 0.60 M to 0.20 M in 40 seconds. What is the rate constant for this reaction?
A proposed mechanism for the reaction 2NO+O2→2NO2 is: Step 1: NO+NO⇌N2O2 (fast equilibrium); Step 2: N2O2+O2→2NO2 (slow). What experimental observation would most strongly support this mechanism?
A reaction has an activation energy of 85 kJ/mol. By what factor does the rate constant increase when the temperature is raised from 25°C to 45°C? (R = 8.314 J/mol·K)