Lesson 3.1.2
3.1.2 Oxidation, reduction and electron transfer Quiz: Pearson Edexcel Chemistry, Unit 3
20 questions
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Lesson 3.1.2, Oxidation, reduction and electron transfer: 20 multiple choice questions for the Pearson Edexcel Chemistry (9CH0), Unit 3: Redox I, written with Revision Ninja.
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The 20 questions
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What does an oxidising agent do in a reaction?
- It gains protons and is itself oxidised
- It gains electrons and is itself reduced
- It loses electrons and is itself oxidised
- It loses electrons and is itself reduced
-
What does a reducing agent do in a reaction?
- It loses electrons and is itself oxidised
- It gains electrons and is itself reduced
- It loses protons and is itself reduced
- It gains electrons and is itself oxidised
-
In the reaction 2Mg + O2 -> 2MgO, which species is oxidised?
- No species is oxidised
- Magnesium oxide
- Magnesium
- Oxygen
-
In the reaction 2Na + Cl2 -> 2NaCl, what is the oxidation number change of chlorine?
- +1 to -1
- -1 to 0
- 0 to +1
- 0 to -1
-
Which species acts as the oxidising agent in 2Fe2+ + Cl2 -> 2Fe3+ + 2Cl-?
- Chlorine, Cl2
- Chloride ion, Cl-
- Iron(II) ion, Fe2+
- Iron(III) ion, Fe3+
-
Why is the reaction of Cl2 with Br- an example of a redox reaction?
- Chlorine and bromide exchange positions without any change in charge, so no electrons are actually transferred between them
- Chlorine gains electrons and bromide loses electrons, so both oxidation numbers change
- Neither species changes its oxidation number, because the reaction involves only a simple exchange of ions in solution
- Only bromine changes its oxidation number in the reaction, while chlorine stays at zero throughout the process
-
What is the oxidation number of sulfur in H2S?
- 0
- +2
- -2
- +6
-
In the reaction Cu + 2Ag+ -> Cu2+ + 2Ag, what is the reducing agent?
- Copper(II) ion, Cu2+
- Copper, Cu
- Silver ion, Ag+
- Silver, Ag
-
Which equation shows oxidation of iron?
- Fe -> Fe2+ + 2e-
- Fe2+ -> Fe3+ + e-
- Fe3+ + e- -> Fe2+
- Fe3+ + 3e- -> Fe
-
Which species is reduced when permanganate is used in acidic solution?
- Fe2+ to Fe3+
- MnO4- to Mn2+
- H2O to O2
- Mn2+ to MnO4-
-
In a redox reaction, which statement about electron transfer is correct?
- The total number of electrons lost by the reducing agent equals the total number gained by the oxidising agent
- Electrons are created during oxidation and destroyed during reduction, so the total number changes in every reaction
- Oxidation involves the gain of protons from the solvent, which is why the oxidation number increases in the reaction
- Only metals can be oxidised in a redox reaction, because non-metals always gain electrons and are reduced
-
Why does a reduction always accompany an oxidation?
- Electrons lost by one species must be gained by another species
- Oxidation is always followed by a change in pH of the solution, which is what triggers reduction of the other species
- Reduction occurs only when a gas is evolved from the reaction mixture, so oxidation must produce a gas first
- Oxidation produces electrons that reduction then absorbs as heat, so the energy released is always balanced in the reaction
-
In the reaction 2H+ + Mg -> Mg2+ + H2, what is the oxidation number change of hydrogen?
- +1 to 0
- +1 to -1
- 0 to -1
- 0 to +1
-
Which species is oxidised in the reaction between iodide and chlorine?
- Iodide ion, I-
- Chlorine, Cl2
- Chloride ion, Cl-
- Iodine, I2
-
Explain why the reaction of zinc with copper(II) sulfate is a redox reaction.
- Zinc is oxidised from 0 to +2 and copper is reduced from +2 to 0, so electrons are transferred
- Zinc and copper(II) sulfate exchange sulfate ions without any change in oxidation number, so no electrons are transferred
- Copper(II) sulfate is oxidised while zinc stays neutral, because the sulfate ion carries the electrons away from zinc
- Only the sulfate ion changes oxidation number during the reaction, while both the zinc and copper atoms remain unchanged
-
Which statement about oxidising agents is correct?
- A good oxidising agent is easily oxidised, losing electrons readily
- An oxidising agent is always an element in Group 1
- A good oxidising agent is easily reduced, gaining electrons readily
- An oxidising agent gains protons to become reduced
-
A reaction shows the oxidation number of iron changing from +2 to +3. Which statement is correct?
- Iron has been oxidised and has lost one electron
- Iron has gained two electrons, which is why its oxidation number rises by two units during the change
- Iron has been reduced and gained one electron, which lowers its oxidation number from +3 back down to +2
- Iron has lost two electrons and been reduced, which is why the oxidation number changes by a total of one
-
Which species is acting as the reducing agent in 2Br- + Cl2 -> Br2 + 2Cl-?
- Bromine, Br2
- Chlorine, Cl2
- Bromide ion, Br-
- Chloride ion, Cl-
-
Explain how oxidation number and electron transfer are related.
- Oxidation numbers change only when protons are transferred between the species in the reaction mixture
- A decrease in oxidation number corresponds to a loss of electrons, which is the reverse of the usual pattern
- An increase in oxidation number corresponds to a loss of electrons, and a decrease corresponds to a gain of electrons
- Oxidation number and electron transfer are unrelated concepts, so one cannot be used to predict the other at all
-
Which reaction is a redox reaction in which hydrogen is oxidised?
- H2 + Cl2 -> 2HCl, with hydrogen going from 0 to +1
- NaOH + HCl -> NaCl + H2O, with no change in oxidation number
- CaCO3 -> CaO + CO2, with carbon keeping the same oxidation number
- 2HCl -> H2 + Cl2, with hydrogen going from +1 to 0
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