What this quiz covers
This quiz focuses on Reaction Quotient And Le Chateliers Principle, giving you a quick way to practice the rules, question types, and explanations that matter most for College Chemistry.
The equilibrium N2O4(g)⇌2NO2(g) is established in a sealed container at constant temperature. According to Le Chatelier's principle, which change would cause the equilibrium to shift toward the formation of more NO2(g)?
College Chemistry Quiz
Practice Reaction Quotient And Le Chateliers Principle 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 Quotient And Le Chateliers Principle, 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 equilibrium N2O4(g)⇌2NO2(g) is established in a sealed container at constant temperature. According to Le Chatelier's principle, which change would cause the equilibrium to shift toward the formation of more NO2(g)?
For the equilibrium N2(g)+3H2(g)⇌2NH3(g), Kp=6.8×10−4 at 298°C. A reaction mixture at this temperature has partial pressures: PN2=0.35 atm, PH2=0.18 atm, and PNH3=4.2×10−4 atm. What is Qp and which direction will the reaction proceed?
The reaction N2O4(g)⇌2NO2(g) is endothermic with ΔH=+58 kJ/mol. A sealed container at equilibrium contains both gases at 25°C. If the container is placed in an ice bath, which changes will occur?
For the reaction 2A(g)+B(g)⇌3C(g), the equilibrium constant Kp=27 at 600 K. At a particular instant, the partial pressures are PA=1.0 atm, PB=2.0 atm, and PC=6.0 atm. Which statement correctly describes the system?
For the gas-phase equilibrium A2(g)+3B2(g)⇌2AB3(g), the reaction is at equilibrium in a container at constant temperature. If the container volume is increased by a factor of 3 while keeping temperature constant, what happens to the reaction quotient immediately after the volume change?
The equilibrium 2NOCl(g)⇌2NO(g)+Cl2(g) is endothermic. A sealed container at equilibrium contains all three gases at 400°C. If the container is rapidly heated to 500°C, what are the immediate and final effects?
For the reaction PCl5(g)⇌PCl3(g)+Cl2(g), Kp=0.497 at 500 K. A reaction vessel initially contains PCl5 at 2.0 atm pressure with no products present. At some point during the reaction, PPCl5=1.6 atm. What is Qp at this moment?
A chemical engineering student is studying the water-gas shift reaction: CO(g)+H2O(g)⇌CO2(g)+H2(g) at 1000 K, where Kc=1.0. Three different experimental trials are conducted in identical 2.0 L reactors, each starting with different initial conditions but reaching equilibrium at the same temperature.
In Trial 1, the reactor initially contains 0.40 mol CO and 0.40 mol H2O with no products. After reaching equilibrium, the concentration of CO is measured to be 0.10 M. What is the reaction quotient Qc if, at some intermediate time before equilibrium, the concentrations are [CO]=0.15 M, [H2O]=0.15 M, [CO2]=0.05 M, and [H2]=0.05 M?
For the equilibrium 2SO2(g)+O2(g)⇌2SO3(g), the equilibrium concentrations at 1000 K are [SO2]=3.0×10−3 M, [O2]=3.5×10−3 M, and [SO3]=5.0×10−2 M. If the volume of the container is suddenly doubled at constant temperature, what is the immediate value of Qc after the volume change?
Consider the equilibrium 2SO2(g)+O2(g)⇌2SO3(g) with ΔH=−198 kJ. If the temperature of the system is increased while keeping volume constant, what will happen to the equilibrium position and the value of the equilibrium constant?
Consider the equilibrium CaCO3(s)⇌CaO(s)+CO2(g) in a sealed container at 900°C. Which of the following changes would cause the equilibrium to shift toward the formation of more CO2(g)?
The equilibrium Fe3+(aq)+SCN−(aq)⇌FeSCN2+(aq) is established in aqueous solution. The equilibrium mixture has a deep red color due to the FeSCN2+ complex. If solid NaSCN is added to the equilibrium mixture, which observation would be expected?
For the reaction 2SO2(g)+O2(g)⇌2SO3(g), the equilibrium constant Kc=4.0×106 at 727°C. If a reaction mixture contains [SO2]=0.040 M, [O2]=0.028 M, and [SO3]=0.15 M, what is the reaction quotient Qc, and in which direction will the reaction proceed?
For the gas-phase reaction 2A(g)⇌B(g)+C(g), the equilibrium constant Kp=4.5 at 500 K. If the partial pressures at a given moment are PA=2.0 atm, PB=1.5 atm, and PC=3.0 atm, what is Qp and what will happen?
For the gas-phase equilibrium PCl5(g)⇌PCl3(g)+Cl2(g), the equilibrium is established in a rigid container. If some argon gas is injected into the container at constant temperature, which statement best describes the effect on the equilibrium?
At 1000 K, the equilibrium constant for CO(g)+H2O(g)⇌CO2(g)+H2(g) is Kc=1.0. If equal molar amounts of CO and H2O are placed in a container, and the equilibrium concentration of CO is found to be 0.30 M, what was the initial concentration of CO?