Lesson 10.1.1
10.1.1 Dynamic equilibrium and the equilibrium constant Kc Quiz: Pearson Edexcel Chemistry, Unit 10
20 questions
In partnership with Revision Ninja
Lesson 10.1.1, Dynamic equilibrium and the equilibrium constant Kc: 20 multiple choice questions for the Pearson Edexcel Chemistry (9CH0), Unit 10: Equilibrium I, written with Revision Ninja.
Host it live on the board and students join with a game code on their own devices, or revise alone with Free Play. The answers are revealed in the game.
The 20 questions
-
What is meant by dynamic equilibrium in a closed system?
- The reaction has stopped and no further change occurs, so the mixture is unchanged from that point
- The concentrations of reactants and products are always equal, which is the defining feature
- The reaction is complete and only products remain, because the reverse reaction has ceased
- The forward and backward reaction rates are equal, and concentrations stay constant
-
Which statement is true at dynamic equilibrium?
- The reaction has no enthalpy change, because the energy of the reactants and products is identical
- The rate of the forward reaction equals the rate of the backward reaction
- The rate of the forward reaction is zero, because no net reaction can take place at equilibrium
- The concentrations of reactants and products are equal, which is the defining property of equilibrium
-
For the equilibrium N2(g) + 3H2(g) ⇌ 2NH3(g), which expression is correct for Kc?
- Kc = [NH3]^2 / ([N2][H2]^3)
- Kc = [NH3] / ([N2] + [H2]^3)
- Kc = [NH3]^2 / ([N2][H2])
- Kc = [N2][H2]^3 / [NH3]^2
-
For the equilibrium H2(g) + I2(g) ⇌ 2HI(g), what are the units of Kc?
- mol dm-3, the usual concentration units, because Kc is always defined as a concentration ratio
- mol-1 dm3, the units produced when the reactant concentrations are multiplied together
- No units, because the total moles of gas on each side are equal
- mol2 dm-6, the units produced by squaring the product concentration in the expression
-
For the equilibrium N2O4(g) ⇌ 2NO2(g), the equilibrium concentrations are [N2O4] = 0.040 mol dm-3 and [NO2] = 0.12 mol dm-3. What is Kc?
- 0.36 mol dm-3
- 3.0 mol dm-3
- 0.0144 mol dm-3
- 0.0048 mol dm-3
-
In a heterogeneous equilibrium, how are solids and pure liquids treated in the expression for Kc?
- They are included with their concentrations
- They are omitted from the expression
- They are squared in the expression
- They are included as their molar masses
-
For the equilibrium CaCO3(s) ⇌ CaO(s) + CO2(g), which expression is correct for Kc?
- Kc = [CaCO3] / [CO2]
- Kc = [CaO] / [CaCO3]
- Kc = [CO2]
- Kc = [CaO][CO2] / [CaCO3]
-
In the equilibrium 2SO2(g) + O2(g) ⇌ 2SO3(g), what is the expression for Kc?
- Kc = [SO3]^2 / ([SO2] + [O2])
- Kc = [SO3] / ([SO2][O2])
- Kc = [SO3]^2 / ([SO2]^2 [O2])
- Kc = [SO2]^2[O2] / [SO3]^2
-
What happens to the value of Kc when a catalyst is added to an equilibrium mixture?
- It doubles
- It increases with the amount of catalyst
- It becomes zero
- It does not change
-
In the reaction of hydrogen with iodine, Kc is found to be 50 at 700 K. What does a large value of Kc indicate?
- The reaction is catalysed
- The reaction is at zero rate
- The equilibrium lies to the left, favouring reactants
- The equilibrium lies to the right, favouring products
-
A reaction reaches equilibrium with [A] = 0.20 mol dm-3, [B] = 0.10 mol dm-3 and [C] = 0.50 mol dm-3, for A + B ⇌ C. What is Kc?
- 0.04 mol-1 dm3
- 0.4 mol-1 dm3
- 2.5 mol-1 dm3
- 25 mol-1 dm3
-
For the equilibrium PCl5(g) ⇌ PCl3(g) + Cl2(g), at equilibrium [PCl5] = 0.020 mol dm-3, [PCl3] = 0.080 mol dm-3 and [Cl2] = 0.080 mol dm-3. What is Kc?
- 0.0080 mol dm-3
- 3.13 mol dm-3
- 0.00200 mol dm-3
- 0.32 mol dm-3
-
Which statement describes the approach to dynamic equilibrium from pure reactants in a closed container?
- The backward rate is high at the start and stays constant throughout the approach to equilibrium
- Both rates are zero at the start and rise together until the equilibrium position is reached in the flask
- The rates never change and are equal from the beginning, so there is no approach to equilibrium
- The forward rate is initially high and falls, while the backward rate rises until they are equal
-
What is the effect of adding more reactant to a system at equilibrium on the value of Kc?
- Kc increases in proportion to the added reactant, so the constant rises as more reactant is supplied
- Kc decreases in proportion to the added reactant, since more reactant pushes the value downward
- Kc becomes equal to one whenever a reactant is added, because the mixture is then at standard state
- Kc stays the same at constant temperature, though the position of equilibrium shifts
-
Which expression is correct for the reaction 2NO(g) + O2(g) ⇌ 2NO2(g)?
- Kc = [NO2]^2 / ([NO]^2 [O2])
- Kc = [NO2]^2 / ([NO] + [O2])
- Kc = [NO2] / ([NO][O2])
- Kc = [NO]^2 [O2] / [NO2]^2
-
A reaction has Kc = 4.0 mol-1 dm3 for A + B ⇌ C. If [A] = 0.50 and [B] = 0.50 mol dm-3, what is [C] at equilibrium?
- 2.0 mol dm-3
- 0.25 mol dm-3
- 4.0 mol dm-3
- 1.0 mol dm-3
-
Which description correctly identifies a heterogeneous equilibrium?
- Only one product is formed
- Reactants and products are all in the same state
- Reactants and products are in more than one physical state
- Reactants and products are all solids
-
Why is an equilibrium constant for a reaction at a given temperature constant, even as concentrations change?
- Kc is always equal to the concentration of the product, so it changes as the product forms
- Kc depends on the volume of the container alone, so it changes whenever the vessel is resized
- Kc depends only on temperature, so it remains constant for a fixed temperature
- Kc is the ratio of reactant masses, which never changes because the masses are conserved
-
For the equilibrium 2A + B ⇌ 3C, which expression is correct for Kc?
- Kc = [C]^3 / ([A]^2 [B])
- Kc = [C] / ([A][B])
- Kc = [C]^3 / ([A] + [B])
- Kc = [A]^2 [B] / [C]^3
-
For the equilibrium Fe3+(aq) + SCN-(aq) ⇌ FeSCN2+(aq), which expression is correct for Kc?
- Kc = [Fe3+] / ([SCN-][FeSCN2+])
- Kc = [FeSCN2+] / ([Fe3+] + [SCN-])
- Kc = [FeSCN2+] / ([Fe3+][SCN-])
- Kc = [Fe3+][SCN-] / [FeSCN2+]
Related quizzes
- Sub-atomic particles, isotopes and relative masses Quiz · 1.1.1 · 20 questions
- Kp and partial pressures Quiz · 11.1.1 · 20 questions
- Brønsted-Lowry acids, bases and conjugate pairs Quiz · 12.1.1 · 20 questions
- Lattice energy and Born-Haber cycles Quiz · 13A.1 · 20 questions
- Standard electrode potentials and the hydrogen electrode Quiz · 14.1.1 · 20 questions
- Electronic configurations and oxidation states Quiz · 15A.1 · 20 questions
- Rate equations and orders of reaction Quiz · 16.1.1 · 20 questions
- Chirality, optical isomers and racemic mixtures Quiz · 17A.1 · 20 questions
- Bonding and stability of benzene Quiz · 18A.1 · 20 questions
- Interpreting mass spectra Quiz · 19A.1 · 20 questions