Lesson 4A.1
4A.1 Group 1 and 2 trends, reactions and flame colours Quiz: Pearson Edexcel Chemistry, Unit 4
20 questions
In partnership with Revision Ninja
Lesson 4A.1, Group 1 and 2 trends, reactions and flame colours: 20 multiple choice questions for the Pearson Edexcel Chemistry (9CH0), Unit 4: Inorganic Chemistry and the Periodic Table, 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
-
Why does first ionisation energy decrease down Group 2?
- Nuclear charge decreases down the group, so the outer electrons are held less tightly by the atoms overall
- The outer electrons move into lower-energy sub-shells as the group is descended, which makes them easier to remove
- Group 2 atoms gain neutrons as the group is descended, and these neutrons weaken the attraction to the electrons
- Atoms get larger and shielding increases, so the outer electron is held less strongly
-
Why does reactivity of Group 2 elements increase down the group?
- Atoms gain electrons more easily down the group, because the outer shell becomes less full and more reactive
- Atoms become smaller and more electronegative as the group is descended, which makes them more reactive
- Atoms lose outer electrons more easily, because the ionisation energy falls
- Atoms have fewer electrons in their outer shell as the group is descended, which makes them more reactive overall
-
What is the product when magnesium burns in oxygen?
- Magnesium oxide, MgO
- Magnesium hydroxide, Mg(OH)2
- Magnesium carbonate, MgCO3
- Magnesium peroxide, MgO2
-
Which equation shows the reaction of calcium with water?
- Ca + H2O -> CaO + H2, which gives calcium oxide and hydrogen but is not balanced for the water used
- Ca + H2O -> CaCO3 + H2, which gives calcium carbonate and hydrogen in the presence of water
- Ca + 2H2O -> Ca(OH)2 + H2
- Ca + 2H2O -> CaO2 + 2H2, which gives a peroxide product that is not the usual product of the reaction
-
What is formed when calcium oxide reacts with water?
- Calcium peroxide, which is an acidic compound that releases oxygen when it dissolves in water
- Calcium hydroxide, which is an alkaline solution
- Calcium chloride, which is neutral in solution and does not change the pH of the water at all
- Calcium carbonate, which is insoluble in water and forms a white precipitate in the solution
-
Which is the correct equation for magnesium oxide reacting with dilute hydrochloric acid?
- MgO + 2HCl -> MgCl2 + H2
- MgO + 2HCl -> MgCl2 + H2O
- MgO + HCl -> MgCl + H2O
- MgO + HCl -> MgCl2 + H2O2
-
Which Group 2 hydroxide is the most soluble in water?
- Barium hydroxide
- Beryllium hydroxide
- Magnesium hydroxide
- Calcium hydroxide
-
How does the solubility of Group 2 sulfates change down the group?
- It is the same for all sulfates in the group, so none of them is more soluble than another
- It increases, so barium sulfate is the most soluble of the Group 2 sulfates in water at room temperature
- It increases only for the Group 1 sulfates, while the Group 2 sulfates stay equally insoluble
- It decreases, so barium sulfate is the least soluble
-
Why does thermal stability of Group 2 carbonates increase down the group?
- Larger cations have more protons that stabilise the carbonate ion, which makes decomposition harder to start
- Smaller cations polarise the carbonate ion less, so the carbonate is more easily decomposed by heat
- Larger cations polarise the carbonate ion less, so it is less easily decomposed
- Group 2 carbonates become more covalent down the group, which makes them harder to decompose on heating
-
What is the product of heating magnesium carbonate?
- Magnesium oxide and carbon dioxide
- Magnesium hydroxide and carbon dioxide
- Magnesium chloride and water
- Magnesium oxide and hydrogen
-
Which equation shows the thermal decomposition of calcium carbonate?
- CaCO3 -> Ca(OH)2 + CO2
- CaCO3 -> Ca + CO2 + O2
- CaCO3 -> CaO + CO2
- CaCO3 -> CaO2 + CO
-
Which flame colour is characteristic of barium compounds?
- Lilac, which is the characteristic flame colour produced by potassium compounds in the flame
- Apple green
- Crimson, which is the characteristic colour of lithium compounds in a flame test
- Brick red, which is the colour produced by calcium compounds in a Bunsen flame
-
Which Group 1 metal gives a yellow-orange flame colour?
- Sodium
- Lithium
- Potassium
- Caesium
-
Why do Group 1 and 2 compounds produce characteristic flame colours?
- The metal burns in the flame and gives off a coloured gas that carries the characteristic colour
- Electrons are excited and drop back to lower energy levels, emitting visible light of specific wavelengths
- Water is decomposed in the flame to give a coloured gas that tints the flame in a characteristic way
- Ions absorb all visible light, so the flame looks coloured where the ions are present in the sample
-
Which Group 2 ion gives a brick red flame?
- Magnesium, Mg2+
- Barium, Ba2+
- Calcium, Ca2+
- Beryllium, Be2+
-
Which observation shows that the reactivity of Group 2 metals increases down the group?
- Calcium reacts vigorously with cold water but magnesium reacts only slowly with cold water
- Magnesium reacts faster with cold water than calcium does, which shows that reactivity falls down the group
- All Group 2 metals react equally with cold water, so the reactivity does not change down the group
- Barium reacts with water less vigorously than magnesium does, which is consistent with a fall in reactivity
-
Which product forms when magnesium reacts with chlorine?
- Magnesium hypochlorite, Mg(ClO)2
- Magnesium chlorate, Mg(ClO3)2
- Magnesium chloride, MgCl2
- Magnesium dichloride oxide, MgClO
-
Why does the solubility of Group 2 hydroxides increase down the group?
- Lattice energy falls more than the hydration energy as the cation gets larger
- The hydroxides become covalent down the group, so they dissolve more readily in the water solvent
- Hydroxide ions get larger down the group, which makes the hydroxides more soluble in the water solution
- Hydration energy falls faster than lattice energy as the group is descended, so the hydroxides dissolve less
-
Which Group 2 nitrate on heating gives a metal oxide, nitrogen dioxide and oxygen?
- Barium carbonate
- Calcium nitrate
- Magnesium chloride
- Lithium nitrate and sodium nitrate only
-
Explain why the reaction of magnesium with steam is slower than the reaction of calcium with cold water.
- Magnesium is less reactive because its ionisation energy is higher, so it loses electrons less readily
- Calcium is a Group 1 metal, so it reacts more readily with steam and water than magnesium does in the reaction
- Magnesium has more protons than calcium, so its nucleus shields the outer electrons more and makes them harder to lose
- Magnesium is not a Group 2 element, so it does not react in the same way as calcium with water or steam
Related quizzes
- Group 7 trends and halogen reactions Quiz · 4B.1 · 20 questions
- Tests for identifying inorganic ions Quiz · 4C.1 · 20 questions
- Sub-atomic particles, isotopes and relative masses Quiz · 1.1.1 · 20 questions
- Dynamic equilibrium and the equilibrium constant Kc Quiz · 10.1.1 · 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