CCEA GCSE · Exam Tips

Chemistry 1110 Exam Tips

CCEA GCSE Chemistry Higher Tier is dominated by organic chemistry, metals and quantitative work. This page maps the marks across all four units and fixes the recording and calculation habits that examiner reports flag every year.

3 min readUpdated: 3 Sept 2026

Exam at a Glance

Papers
4
Total Marks
280
Time Limit
5h 45min
Question Types
12
PaperDurationMarksQuestionsWeightingQuestion Types
Unit 1: Structures, reactions & analysis1h 15min80535%Symbol equations and dot-cross diagrams, Data tables and short recall, Quantitative stoichiometry, Extended response (QWC)
Unit 2: Rates, equilibrium & organic chemistry1h 30min100640%Rates and energy calculations, Electrolysis and half-equations, Industrial metal extraction processes, Volumetric analysis stoichiometry, Extended response (QWC)
Unit 3: Practical (hands-on)2h3087.5%Observation recording and pH testing, Enthalpy temperature and precipitate observations
Unit 3: Practical theory1h70517.5%Halogen and halide identification, Gas law volume calculations, Experimental apparatus diagram and table design, Solubility graph interpretation and crystallisation, Extended response (QWC)
Grade Scale
A*ABC*CDEFGU
Calculator Policy

You may use a scientific calculator and the Data Leaflet on every paper in this subject. CCEA follows the JCQ rule that applies across all its exams: no calculator with a computer algebra system, no borrowing a calculator from another candidate, and nothing stored in memory that could be retrieved during the exam, including formulae, notes or text. If your calculator has an exam mode, switch it on. It clears stored data far more reliably than the reset button, which only resets display settings and leaves stored programs or text in memory.

  • AO1: AO1: demonstrate knowledge and understanding of scientific ideas, and scientific techniques and procedures (40%)
  • AO2: AO2: apply knowledge and understanding of and develop skills in scientific ideas, and scientific enquiry, techniques and procedures (40%)
  • AO3: AO3: analyse scientific information and ideas to interpret and evaluate, make judgements and draw conclusions, and develop and improve experimental procedures (20%)

Built from real past papers and marking schemes (2023–2025).

Tips & Strategies

Where the marks actually go

Organic chemistry is the single biggest topic in this subject, worth close to a sixth of the whole qualification on its own. Metals and the reactivity series, quantitative chemistry in Unit 2, bonding and the Periodic Table make up most of the rest, with the practical skills unit adding its own thirty-plus marks for how well you can carry out and record an experiment. If your revision time is limited, organic chemistry and quantitative chemistry are where an extra hour pays back the most.

The recurring pattern in examiner reports is not missing knowledge, it is missing precision: dropped state symbols, electrons placed on the wrong side of a half-equation, titration scale-ups forgotten, and rate of reaction explanations that describe a change without saying why it happens. Every one of these is fixable without learning a single new fact.

Paper structure and timing

Unit 1 is 75 minutes for 80 marks across five questions, so roughly 15 minutes a question, weighted towards the ones carrying more marks. Unit 2 is 90 minutes for 100 marks across six questions, close to a minute a mark. Both units carry one 6-mark extended response marked for quality of written communication. Spot that question early in each paper and plan to write it in full sentences rather than a list of points.

Unit 3 is the practical skills unit, split into two booklets. Booklet A is the hands-on lab paper: two hours for 30 marks, recording observations, pH results and temperature data directly into the tables provided. There is no reward for finishing early here, only for recording data cleanly and consistently. Booklet B is 60 minutes for 70 marks across five questions covering halogen identification, gas volume calculations, apparatus diagrams and solubility graphs, so around 12 minutes a question.

Where the technique pays off

Structured short-answer and calculation questions carry the largest share of marks across both theory units, with equations and half-equations close behind. A few habits consistently separate strong scripts from average ones.

  • Say why the rate changed, not just that it did. 'The rate increases' on its own earns little. Say that increasing concentration increases the frequency of collisions per unit time, or the equivalent for temperature or surface area.
  • Balance electrons on the correct side. In electrolysis half-equations, check which side the electrons belong on before you submit an answer, for example 2Cl- minus 2e- gives Cl2, not the reverse.
  • Scale titration results all the way through. If a 25 cm3 sample came from a 250 cm3 volumetric flask, multiply your final answer by 10 before you finish. This single scaling step is one of the most common places a correct calculation still loses its final mark.

CCEA conventions to know

Both theory units carry one 6-mark QWC question, marked against a banded mark scheme with a minimum mark threshold for each band. Reaching the top band means covering the required scientific content in continuous prose with correct spelling, punctuation and grammar, not writing more.

State symbols are only needed when a question specifically asks for them, but when it does, every species needs one, including (aq) for ions in solution and (l) for water. Missing one state symbol in an otherwise correct equation is a common one-mark loss.

The week before

Redo a full set of titration and empirical formula calculations end to end, including the scaling step from sample volume back to the full volumetric flask. Write out electrolysis half-equations for at least three different electrolytes, checking the electron balance each time. Practise a 6-mark QWC answer to a strict timed limit so covering every indicative content point becomes automatic. On the day, read every calculation question twice before starting: once for what is being asked, once to check what units and precision the final answer line requires.

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Practise This Topic

Calculator Programmes

Scale titration answers in one chained calculation

Casio fx-83/85 series (scientific)

Purpose: Stops the sample-to-flask scaling step, such as times 10 for a 25 cm3 sample from a 250 cm3 flask, from being forgotten or applied to a rounded figure.

When to use it: Any titration question where the sample analysed is a fraction of a larger volumetric flask.

Steps
After calculating moles or mass from the titration sample, multiply straight through by the scaling factor in the same calculator entry using the ANS key, rather than writing the unscaled figure down and retyping it.

Exam note: This is a live, in-exam technique. CCEA and JCQ ban anything stored in a calculator's memory before the exam, including formulae or previous working, so clear your calculator and switch on exam mode if it has one before you sit down.

Use memory recall for empirical formula ratios

Casio fx-83/85 series (scientific)

Purpose: Keeps mole ratios exact when dividing by the smallest value to find an empirical formula, instead of dividing by a rounded figure.

When to use it: Any empirical or molecular formula question comparing mole ratios of two or more elements.

Steps
Calculate the moles of each element, store the smallest value with the memory-store key (M+ or STO), then recall it (MR or RCL) to divide each of the other values by the exact figure rather than a rounded one.

Exam note: Use this only for values calculated during the exam itself. No programme or stored formula list is permitted, and a manual reset does not clear stored memory: use exam mode instead.

Calculate percentage yield and atom economy in one sequence

Casio fx-83/85 series (scientific)

Purpose: Stops the percentage sign being applied to the wrong part of the sum in a yield or atom economy calculation.

When to use it: Any percentage yield or atom economy question.

Steps
Enter actual divided by theoretical, or the atom economy equivalent, inside brackets, then multiply by 100 in the same calculation, so the order of operations is fixed by the brackets rather than by memory.

Exam note: This is a working method for the exam only. Clear your calculator's memory beforehand and do not rely on the reset button, which does not remove stored data.

Common Mistakes

  1. 1mediumMarks at stake: 2Rates of reaction

    Writing that a rate 'increases' or 'is faster' without saying why, omitting the collision frequency or particles-per-unit-time reasoning behind it.

    How to avoid it: State the mechanism, not just the direction: increasing concentration or temperature increases the frequency of successful collisions per unit time.
  2. 2highMarks at stake: 1Acids, bases and salts

    Inverting the indicator colour change in titration descriptions, for example writing pink to colourless instead of colourless to pink when adding alkali to acid with phenolphthalein.

    How to avoid it: Work out which reagent is in the flask and which is in the burette before describing the colour change, and write the starting colour first.
  3. 3mediumMarks at stake: 1Symbols, formulae and equations

    Omitting state symbols when a question specifically asks for them in a balanced symbol or ionic equation.

    How to avoid it: Once a question says 'include state symbols', treat every species as needing one, including (aq) for dissolved ions and (l) for water.
  4. 4highMarks at stake: 3Quantitative chemistry

    Forgetting the scaling multiplier when moving from a 25 cm3 titration sample back to a 250 cm3 volumetric flask, for example missing the times 10 step.

    How to avoid it: Write the scaling factor as a separate labelled line in your working immediately after the titration calculation, before you move to the next step.
  5. 5highMarks at stake: 2Electrochemistry

    Placing electrons on the wrong side of electrolysis half-equations, or failing to balance charge, for example not writing 2Cl minus to Cl2 plus 2e minus correctly.

    How to avoid it: Check the total charge on each side of a half-equation balances before moving on. Electrons go with the ions losing or gaining them, not on the product side by default.
  6. 6mediumMarks at stake: 2Acids, bases and salts

    Believing a weak acid is the same as a dilute acid, rather than understanding that weak specifically means only partially ionised in water.

    How to avoid it: Define weak and dilute separately every time: weak describes the degree of ionisation, dilute describes the concentration. A weak acid can be concentrated.
  7. 7mediumMarks at stake: 2Equilibrium

    Believing an increase in pressure shifts an equilibrium toward the side with more moles of gas, the opposite of what actually happens.

    How to avoid it: Learn the rule the right way round: increasing pressure shifts equilibrium toward the side with fewer gas moles, because that reduces the pressure again.

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