Lesson 5.3.2
5.3.2 Ionic equations, observations and hazards Quiz: Pearson Edexcel Chemistry, Unit 5
20 questions
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Lesson 5.3.2, Ionic equations, observations and hazards: 20 multiple choice questions for the Pearson Edexcel Chemistry (9CH0), Unit 5: Formulae, Equations and Amounts of Substance, written with Revision Ninja.
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The 20 questions
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In the reaction NaCl(aq) + AgNO3(aq) -> AgCl(s) + NaNO3(aq), which species are spectator ions?
- Na+(aq) and NO3-(aq)
- Na+(aq) and Cl-(aq)
- AgCl(s) and NaNO3(aq)
- Ag+(aq) and Cl-(aq)
-
Which is the correct ionic equation for the precipitation of silver chloride from aqueous silver ions and aqueous chloride ions?
- Ag(s) + Cl2(g) -> AgCl(s)
- Ag+(aq) + Cl-(aq) -> AgCl(s)
- Ag+(aq) + Cl-(s) -> AgCl(s)
- Ag+(aq) + Cl-(aq) -> AgCl(aq)
-
What is the ionic equation for the neutralisation of hydrochloric acid by sodium hydroxide solution, including state symbols?
- H+(aq) + OH-(aq) -> H2O(l)
- H+(aq) + Cl-(aq) -> HCl(aq)
- Na+(aq) + OH-(aq) -> NaOH(s)
- H2(g) + O2(g) -> H2O(l)
-
Dilute hydrochloric acid is added to solid sodium carbonate. Which observation is expected?
- A white precipitate forms immediately
- A brown solid is deposited on the carbonate
- Effervescence, as carbon dioxide gas is given off
- The solution turns blue and a gas with a pungent smell is released
-
Which observation is expected when acidified barium chloride solution is added to a solution containing sulfate ions?
- A white precipitate of barium sulfate forms
- A blue precipitate of copper hydroxide forms
- A yellow precipitate of barium iodide forms
- A green solution and a colourless gas form
-
A sample is warmed with sodium hydroxide solution and a gas is produced that turns damp red litmus paper blue. Which ion is most likely present?
- Chloride, Cl-
- Sulfate, SO4 2-
- Carbonate, CO3 2-
- Ammonium, NH4+
-
When heating a flammable organic liquid in a school laboratory, which precaution is most appropriate?
- Heat it directly over a Bunsen flame with the tube open
- Heat it on a hotplate with the flask stoppered and the lid left on
- Heat it in a sealed flask on a gas ring next to other experiments
- Heat it with a water bath or electric heater, away from naked flames
-
What mass of silver chloride (Mr = 143.5) is precipitated when excess chloride ions react with 0.0200 mol of silver ions?
- 2.87 g
- 1.44 g
- 0.287 g
- 28.7 g
-
How many moles of hydrochloric acid are present in 25.0 cm3 of a 0.200 mol dm-3 solution?
- 0.00125 mol
- 0.0500 mol
- 0.00500 mol
- 0.0200 mol
-
What mass of calcium carbonate (Mr = 100.1) reacts completely with 50.0 cm3 of 0.500 mol dm-3 hydrochloric acid? CaCO3 + 2HCl -> CaCl2 + H2O + CO2
- 0.125 g
- 2.50 g
- 0.625 g
- 1.25 g
-
A reaction should give 5.00 g of product but 3.80 g is collected. What is the percentage yield?
- 76%
- 132%
- 13%
- 24%
-
Calculate the atom economy for making ethene by the reaction C2H5OH -> C2H4 + H2O. (Mr: C2H5OH = 46.0, C2H4 = 28.0, H2O = 18.0)
- 100%
- 39%
- 28%
- 61%
-
A burette reading has an uncertainty of +/- 0.05 cm3. A titre uses two readings and is 20.00 cm3. What is the percentage uncertainty in the titre?
- 0.05%
- 0.5%
- 5%
- 0.25%
-
A student wants to reduce the percentage uncertainty caused by a burette reading in a titration. Which change is most effective?
- Use a larger titre volume so the fixed reading error is a smaller fraction
- Round each reading to the nearest whole cm3 before subtracting
- Read the burette more quickly to save time between readings
- Use a burette with a smaller number of graduations per cm3
-
When zinc metal is added to aqueous copper(II) sulfate, what would be observed?
- A white precipitate forms and the solution turns green
- The blue solution fades and a brown-red solid deposits on the zinc
- A black solid dissolves and the solution turns yellow
- Bubbles of hydrogen form and the solution turns colourless immediately
-
Which is the correct ionic equation for magnesium reacting with dilute hydrochloric acid?
- Mg2+(aq) + 2OH-(aq) -> Mg(OH)2(s)
- Mg(s) + 2HCl(aq) -> Mg2+(aq) + H2(g)
- Mg(s) + 2H+(aq) -> Mg2+(aq) + H2(g)
- Mg(s) + 2Cl-(aq) -> MgCl2(aq)
-
25.0 cm3 of 0.100 mol dm-3 lead(II) nitrate is added to excess sodium chloride solution. What mass of lead(II) chloride (Mr = 278.2) precipitates?
- 1.39 g
- 0.696 g
- 0.0278 g
- 0.348 g
-
25.0 cm3 of 2.00 mol dm-3 hydrochloric acid reacts with excess magnesium. What volume of hydrogen gas is produced at room conditions, where molar volume is 24.0 dm3 mol-1?
- 300 cm3
- 24 cm3
- 600 cm3
- 1200 cm3
-
Why is methyl orange often preferred over phenolphthalein for titrating a strong acid with a weak base?
- Methyl orange changes colour only in strongly alkaline solutions above pH 12
- Phenolphthalein cannot be used with any acid because it reacts with hydrogen ions
- Methyl orange gives a colour change at exactly pH 7 for every titration
- Methyl orange changes colour in the acidic pH range, matching the lower pH of the equivalence point
-
What is the ionic equation for the precipitation of calcium carbonate when aqueous calcium chloride is mixed with aqueous sodium carbonate?
- Ca2+(aq) + 2Cl-(aq) -> CaCl2(s)
- Ca2+(aq) + CO3 2-(aq) -> CaCO3(aq)
- Ca2+(aq) + CO3 2-(aq) -> CaCO3(s)
- Ca(s) + CO3 2-(aq) -> CaCO3(s)
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