Redox chemistry runs from Year 1 oxidation states to Year 2 electrochemical cells, and this quiz covers the full arc — with every EMF value independently recomputed during verification.
The foundations are tested through the chlorine-in-alkali disproportionation (one element simultaneously oxidised to +1 and reduced to −1), oxidation state assignment in the dichromate ion (the 2x − 14 = −2 algebra giving +6), and the balanced half-equation for manganate(VII) reduction in acid — the 8H⁺, 5e⁻ workhorse of titration chemistry.
The electrochemistry questions build the full Year 2 apparatus. The standard hydrogen electrode is specified exactly: platinum electrode, hydrogen at 100 kPa, 1.0 mol dm⁻³ H⁺, defined as zero. Cell EMF is calculated twice — the iron/tin cell at +0.62 V and the aluminium/zinc cell at +0.90 V, the second requiring care with two negative electrode potentials. Feasibility prediction from the electrochemical series is tested through which metal/ion pairings give a positive cell EMF, and the series' logic — more positive means better oxidising agent — gets a dedicated question.
Practical electrochemistry completes the set: the alkaline hydrogen fuel cell with oxidation at the anode and reduction at the cathode, and the factors that shift a measured electrode potential away from its standard value (temperature and concentration — the Nernst territory A-level touches qualitatively).
The blind-solver verification pass returned complete agreement on all ten questions. Explanations always show the electron bookkeeping, which is the habit that makes redox reliable rather than memorised.
Aligned to the redox core of the DfE A level science subject content: oxidation states, half-equations, standard electrode potentials, cell EMF, feasibility and fuel cells.