Chemistry · Professor Curie

Every card in Acids and alkalis, Year 10: neutralisation and making salts

The whole deck, in order — so you can read it through before your child ever sees it.

1 GCSE-CHEM-ACD-0001

A calcium ion is Ca²⁺ and a nitrate ion is NO3⁻. What is the formula of calcium nitrate?

Ca(NO3)2

HintThe charges have to cancel, and a group of atoms that is needed more than once goes inside brackets.

WhyOne Ca²⁺ carries two positive charges, so it needs two NO3⁻ ions to balance it. The whole nitrate group is doubled, so it is written in brackets with the 2 outside.

2 GCSE-CHEM-ACD-0002

Sodium sulfate has the formula Na2SO4. In terms of the charges on its ions, why are two sodium ions needed for each sulfate ion?

A sulfate ion is 2−, and each sodium ion is only 1+

HintA compound has no overall charge, so the pluses and minuses must add up to zero.

WhySodium ions are Na⁺ and sulfate ions are SO4²⁻. Two single positive charges are needed to cancel one double negative charge, which gives Na2SO4.

3 GCSE-CHEM-ACD-0003

A base that dissolves in water

An alkali

HintSodium hydroxide solution is the usual laboratory example.

WhyA base is anything that neutralises an acid to give a salt and water: metal oxides and metal hydroxides are bases. Most are insoluble; the ones that dissolve, such as sodium hydroxide, have this special name.

4 GCSE-CHEM-ACD-0004

Complete the word equation: zinc oxide + nitric acid → ____ + ____.

zinc nitrate; water

HintA base and an acid always give the same two kinds of product; the first takes its second name from the acid.

WhyZinc oxide is an insoluble base, and a base neutralises an acid to give a salt and one other product. Nitric acid always gives nitrates, and the metal comes from the base.

5 GCSE-CHEM-ACD-0005

Balance the equation for sodium hydroxide neutralising sulfuric acid: ____NaOH + H2SO4 → Na2SO4 + 2H2O.

2

HintCount the sodium atoms needed on the right-hand side.

WhySodium sulfate, Na2SO4, contains two sodium ions, so two units of NaOH are needed to supply them. The two OH groups and the two H atoms from the acid then make two molecules of water.

6 GCSE-CHEM-ACD-0006

Complete the word equation: sodium carbonate + nitric acid → ____ + water + carbon dioxide.

sodium nitrate

HintThe metal supplies the first word and the acid supplies the second.

WhyEvery carbonate reacts with an acid to give a salt, water and carbon dioxide. The salt takes its metal from the carbonate and its second name from the acid, and nitric acid gives nitrates.

7 GCSE-CHEM-ACD-0007

Marble chips, which are calcium carbonate, are dropped into dilute hydrochloric acid. What would you see that shows a gas is being made?

Bubbles (fizzing)

HintThink of what happens when you open a bottle of lemonade.

WhyThe carbon dioxide forms on the surface of the chips and rises through the liquid. The proper word for this is effervescence, and the chips slowly get smaller as they react.

8 GCSE-CHEM-ACD-0008

Balance the equation for calcium carbonate reacting with hydrochloric acid: CaCO3 + ____HCl → CaCl2 + H2O + CO2.

2

HintCount the chlorine atoms in the salt on the right.

WhyCalcium chloride, CaCl2, holds two chlorine atoms, and each HCl supplies only one. Two HCl also bring the two hydrogen atoms needed for one molecule of water.

9 GCSE-CHEM-ACD-0009

Copper carbonate powder is added a little at a time to dilute sulfuric acid. What sign shows that all of the acid has been used up?

The fizzing stops, even when more powder goes in

HintEach earlier spoonful made a gas; watch for the moment that changes.

WhyWhile acid remains, each addition of carbonate makes carbon dioxide. Once the acid has gone, extra carbonate cannot react, so it simply sits in the liquid.

10 GCSE-CHEM-ACD-0010

An excess of calcium carbonate powder is stirred into dilute hydrochloric acid until no more reacts. The pH of the liquid finishes close to which whole number? (number only)

7

HintAsk what a carbonate does to an acid, and whether the leftover powder can dissolve to push things further.

WhyThe carbonate neutralises the acid, so the pH rises from a low value towards neutral. Calcium carbonate is insoluble, so the excess cannot dissolve and make the liquid alkaline; the salt solution that is left is roughly neutral.

11 GCSE-CHEM-ACD-0011

In making copper sulfate crystals from copper oxide, the dilute sulfuric acid is warmed gently before the copper oxide is added. Why?

The reaction is faster in warm acid

HintThink about how temperature affects how quickly particles collide.

WhyCopper oxide reacts only slowly with cold dilute acid. Warming speeds things up so that the powder reacts in a reasonable time; the acid is warmed gently, never boiled.

12 GCSE-CHEM-ACD-0012

In making a soluble salt, the filtered salt solution is heated over a water bath only until crystals start to appear, and is then left to cool. Why is it not simply boiled until dry?

Strong heating would spoil the crystals

HintGentle treatment gives large, well-shaped pieces; think what harsh treatment could do to them.

WhyBoiling to dryness can make the solid spit out of the dish, and can drive off water that is part of the solid or even break the salt down. Evaporating part of the water and then cooling lets pure, regular pieces grow slowly.

13 GCSE-CHEM-ACD-0013

To make a pure soluble salt, an insoluble solid such as copper oxide is added to the acid in excess. Why would this method not work with a soluble solid such as sodium hydroxide?

The excess would dissolve, so it could not be filtered out

HintThink about what a paper cone in a funnel can and cannot catch.

WhyThe method relies on the leftover solid being caught by the filter paper, leaving only salt solution. A dissolved excess would pass straight through with the salt and contaminate it.

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