Lesson 2.1.3
2.1.3 Amount of substance Quiz: OCR Chemistry, Unit 1
20 questions
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Lesson 2.1.3, Amount of substance: 20 multiple choice questions for the OCR Chemistry (H432), Unit 1: Foundations in chemistry, written with Revision Ninja.
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The 20 questions
-
What is the value of the Avogadro constant to three significant figures?
- 1.60 × 10^-19
- 6.02 × 10^22
- 6.02 × 10^23
- 3.00 × 10^8
-
What is the molar gas volume at room temperature and pressure (RTP)?
- 24.0 cm3 mol-1
- 0.0821 dm3 mol-1
- 24.0 dm3 mol-1
- 22.4 dm3 mol-1
-
What are the units of molar mass?
- mol dm-3
- g mol-1
- mol g-1
- g dm-3
-
What is the empirical formula of glucose, C6H12O6?
- C2H4O2
- C3H6O3
- C6H12O6
- CH2O
-
Which term means the simplest whole-number ratio of atoms of each element present?
- Molecular formula
- Empirical formula
- Structural formula
- General formula
-
What term describes water molecules bound inside a hydrated salt crystal lattice?
- Solvation water
- Water of solution
- Absorbed water
- Water of crystallisation
-
What is the mass of 0.5 mol of NaCl? (Mr = 58.5)
- 29.25 g
- 58.5 g
- 117 g
- 11.7 g
-
How many moles are there in 4.00 g of NaOH? (Mr = 40.0)
- 0.100 mol
- 0.0100 mol
- 4.00 mol
- 0.400 mol
-
What volume does 0.250 mol of nitrogen gas occupy at RTP?
- 0.250 dm3
- 9.60 dm3
- 96.0 dm3
- 6.00 dm3
-
What volume does 1.00 mol of an ideal gas occupy at 298 K and 101 kPa? (R = 8.31 J K-1 mol-1)
- 2450 dm3
- 24.5 cm3
- 0.0245 dm3
- 24.5 dm3
-
2.00 g of NaOH is dissolved to make 250 cm3 of solution. What is the concentration in mol dm-3? (Mr = 40.0)
- 0.0500 mol dm-3
- 0.800 mol dm-3
- 8.00 mol dm-3
- 0.200 mol dm-3
-
What mass of magnesium chloride, MgCl2 (Mr = 95.3), forms from 5.00 g of Mg (Ar = 24.3) reacting with excess HCl?
- 5.00 g
- 39.2 g
- 9.80 g
- 19.6 g
-
A reaction has a theoretical yield of 12.5 g and an actual yield of 9.80 g. What is the percentage yield?
- 56.0%
- 21.6%
- 127%
- 78.4%
-
What is the atom economy of C2H4 + H2O → C2H5OH? (Mr: C2H4 = 28, H2O = 18, C2H5OH = 46)
- 100%
- 75%
- 128%
- 50%
-
Elemental analysis gives 40.0% C, 6.7% H and 53.3% O by mass. What is the empirical formula?
- C2H4O2
- CH2O
- CHO
- C3H6O3
-
The empirical formula is CH2O and the Mr is 180. What is the molecular formula? (C = 12, H = 1, O = 16)
- C2H4O2
- C6H12O6
- CH2O
- C9H18O9
-
When 6.25 g of hydrated copper(II) sulfate is heated, 4.00 g of anhydrous CuSO4 (Mr = 159.5) remains. Which formula describes the hydrate?
- CuSO4.7H2O
- CuSO4.4H2O
- CuSO4.3H2O
- CuSO4.5H2O
-
2.00 g of H2 reacts with 8.00 g of O2 to form water. What mass of water is formed?
- 9.00 g
- 18.0 g
- 4.50 g
- 16.0 g
-
Which of these 1.00 g gas samples occupies the largest volume at RTP?
- Oxygen, O2
- Methane, CH4
- Hydrogen, H2
- Helium, He
-
A 1.00 dm3 container holds 0.0500 mol of gas at 300 K. What is the pressure? (R = 8.31 J K-1 mol-1)
- 1250 kPa
- 12.5 kPa
- 125 kPa
- 1.25 kPa
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