Lesson 3.1.7
3.1.7 Oxidation, reduction and redox equations Quiz: AQA Chemistry, Unit 1
20 questions
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Lesson 3.1.7, Oxidation, reduction and redox equations: 20 multiple choice questions for the AQA Chemistry (7405), Unit 1: Physical chemistry, written with Revision Ninja.
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The 20 questions
-
In redox chemistry, what is oxidation defined as?
- Loss of protons by a species in every reaction
- Gain of electrons by a species
- Gain of positive charge by a species in every reaction
- Loss of electrons by a species
-
In redox chemistry, what is reduction defined as?
- Loss of negative charge by a species in every reaction
- Gain of hydrogen by a species in every reaction
- Loss of electrons by a species
- Gain of electrons by a species
-
What is an oxidising agent?
- A substance that always contains oxygen and is consumed in the reaction
- An electron acceptor, which is itself reduced in the reaction
- An electron donor, which is itself oxidised in the reaction
- A species that is oxidised and loses protons to the solvent
-
What is a reducing agent?
- An electron donor, which is itself oxidised in the reaction
- A species that is reduced and gains protons from the solvent
- A substance that always contains hydrogen and is consumed in the reaction
- An electron acceptor, which is itself reduced in the reaction
-
What is the oxidation state of chromium in the dichromate ion, Cr2O7^2-?
- +6
- +7
- +3
- +12
-
What is the oxidation state of manganese in the permanganate ion, MnO4^-?
- +2
- +5
- +6
- +7
-
What is the oxidation state of sulfur in the sulfate ion, SO4^2-?
- +4
- +6
- +2
- -2
-
What is the oxidation state of sulfur in hydrogen sulfide, H2S?
- -2
- +2
- +6
- 0
-
What is the oxidation state of chlorine in the chlorate(I) ion, ClO^-?
- +7
- +1
- +5
- -1
-
What is the oxidation state of nitrogen in the ammonium ion, NH4^+?
- +5
- -3
- +3
- -1
-
What is the oxidation state of oxygen in hydrogen peroxide, H2O2?
- +1
- -2
- 0
- -1
-
In the half-equation Fe^2+ -> Fe^3+ + e^-, what process occurs?
- Reduction, because iron gains an electron
- Oxidation, because iron gains a proton
- Reduction, because iron loses an electron
- Oxidation, because iron loses an electron
-
In the half-equation MnO4^- + 8H^+ + 5e^- -> Mn^2+ + 4H2O, which process occurs?
- Reduction, because manganese loses five electrons and its oxidation state falls from +7 to +2
- Reduction, because manganese gains five electrons and its oxidation state falls from +7 to +2
- Oxidation, because the hydrogen ions gain electrons from the manganese centre
- Oxidation, because manganese loses five electrons and its oxidation state rises from +7 to +9
-
Combining MnO4^- + 8H^+ + 5e^- -> Mn^2+ + 4H2O with Fe^2+ -> Fe^3+ + e^- gives an overall equation. How many moles of Fe^2+ react with one mole of MnO4^-?
- 1
- 5
- 4
- 8
-
For the reduction half-equation Cr2O7^2- + 14H^+ + 6e^- -> 2Cr^3+ + 7H2O, how many electrons are transferred per dichromate ion?
- 3
- 14
- 2
- 6
-
In the reaction Zn(s) + Cu^2+(aq) -> Zn^2+(aq) + Cu(s), which species is the oxidising agent?
- Cu^2+, because it accepts electrons and is reduced
- Zn^2+, because it donates electrons and is oxidised
- Cu, because it donates electrons and is oxidised
- Zn, because it accepts electrons and is reduced
-
In the reaction Cl2 + 2OH^- -> Cl^- + ClO^- + H2O, what happens to chlorine?
- It is both oxidised and reduced, as its oxidation state goes from 0 to -1 and to +1
- It is only reduced, because its oxidation state falls from 0 to -1 in every product
- It is neither oxidised nor reduced, because chlorine is a diatomic molecule
- It is only oxidised, because its oxidation state rises from 0 to +1 in every product
-
In the half-equation 2S2O3^2- -> S4O6^2- + 2e^-, what is the change in the average oxidation state of sulfur?
- It falls from +2 to +1.5, so sulfur is reduced
- It rises from +2 to +2.5, so sulfur is oxidised
- It stays at +2, so sulfur is neither oxidised nor reduced
- It rises from +2 to +6, so sulfur is oxidised
-
Using the 1:5 ratio from the overall redox equation for MnO4^- and Fe^2+, how many moles of MnO4^- are needed to react completely with 0.0200 mol of Fe^2+?
- 0.00400 mol
- 0.0200 mol
- 0.00100 mol
- 0.100 mol
-
Which species is oxidised in the reaction Mg(s) + 2HCl(aq) -> MgCl2(aq) + H2(g)?
- Chlorine, which changes from oxidation state -1 to 0
- Hydrogen, which changes from oxidation state +1 to 0
- Magnesium, which changes from oxidation state 0 to +2
- Hydrogen, which changes from oxidation state 0 to +1
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