Transition Elements

Learn and apply Transition Elements in the published Chemistry course sequence.

  • GCE A-Level H2 Chemistry 9476-2027
Learning goals
  • Transition Elements: Definition and Electron Configurations
  • Variable Oxidation States and Redox Systems
  • Complex Ions, Ligands, Ligand Exchange
  • d-Orbital Splitting and Colour
  • Transition-metal Catalysis

What You’ll Learn

  • Apply the two-branch transition-element definition—an incomplete d subshell in the atom or in at least one cation—and write first-row atom and ion configurations.
  • Explain the relatively small changes in radius and first ionisation energy, then compare melting point and density with calcium.
  • Predict variable oxidation states and use the Fe³⁺/Fe²⁺, MnO₄⁻/Mn²⁺ and Cr₂O₇²⁻/Cr³⁺ redox systems.
  • Explain copper(II) ligand exchange with water, ammonia and chloride ions, including colour evidence and haemoglobin competition.
  • Describe octahedral d-orbital splitting and connect visible-light absorption to complex colour.
  • Explain how transition elements or their compounds provide catalytic pathways.
H2-only topic

Transition Elements is prescribed in H2 9476. H1 8873 uses electron configurations and redox reasoning elsewhere but does not include this transition-element, complex-ion and d-orbital-colour sequence.

Octahedral d-orbital splitting and complex colourSix ligands approach a metal ion along the coordinate axes. The two d orbitals directed towards the ligands rise above the three directed between the axes. Visible light matching the energy gap is absorbed and the complementary colour is observed.Exam map: octahedral approach → d-orbital splitting → colour1) Six ligands approach along the axesMOrbitals pointing at ligands experience greater repulsion.2) Five d orbitals split into two levelshigher: d(x²−y²), d(z²)lower: d(xy), d(xz), d(yz)photon: E = ΔEA d electron can absorb light and move to the higher level.3) Absorption determines the observed complementary colourPhoton relationship: E = hν = hc/λ. A larger ΔE requires a higher-frequency, shorter-wavelength photon.The absorbed wavelength is removed from white light; the complementary colour is seen.Colour-change sentence: a new metal oxidation state or ligand environment changes ΔE,so a different wavelength is absorbed and a different complementary colour is observed.
Use the map as a causal overview: identity and ligand environment set the d-level splitting, which controls absorbed and observed colour.
  1. Definition and Electron Configurations — classify elements, form ions and explain physical trends.
  2. Variable Oxidation States and Redox Systems — predict oxidation states, balance the named systems and use E⦵ data.
  3. Complex Ions, Ligands and Ligand Exchange — follow the prescribed copper(II) and haemoglobin exchanges.
  4. d-Orbital Splitting and Colour — connect octahedral orientation, absorption and observed colour.
  5. Transition-metal Catalysis — distinguish surface and solution pathways and prove regeneration.

On a first pass, keep this order: configuration supplies oxidation-state and d-electron evidence; those ideas then support redox, complexes, colour and catalysis.

Quick Reference

Evidence in the questionFirst moveWhat to check
“transition element?”inspect the atom and any cation suppliedeither may qualify if its d subshell is incomplete; d⁰/d¹⁰ does not qualify that species
first-row cationwrite the atom, then remove 4s before 3dretain the Cr/Cu atom exceptions
trends across the seriesbalance rising nuclear charge against added 3d shieldingsay relatively invariant, not constant
oxidation-state predictionremove accessible 4s then 3d electronslabel it a prediction unless chemistry is supplied
acidic permanganate/dichromatewrite the memorised reduction half-equationinclude H⁺, H₂O and colour evidence
two E⦵ valuesmore positive couple is reducedpositive E⦵_cell is a standard-state prediction
copper ligand exchangewrite complete bracketed complexesconserve ligand count, atoms and charge
colour explanationoctahedral approach → splitting → absorptionobserved colour is complementary
catalytic cycleadd the stepscatalyst must cancel and be regenerated

The 9476 colour model requires octahedral d-orbital orientation, but not memorisation of the relative order of ligand field strengths.

Hub Quiz

Check the full transition-element chain

Complete the Transition Elements hub quiz after all five lessons. Then use structured Transition Elements practice for longer redox, colour, ligand-exchange and catalysis explanations.

Practise

Work through questions with marking and feedback as you learn.

About 10 minutes

Questions are picked at random each time you start. You'll see the answer after each question. It's for practice only and doesn't count towards mastery.

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Practise after feedback

After a check, practise the skills it showed you need to work on.

About 10 minutes

Questions are picked at random each time you start. You'll see the answer after each question. It's for practice only and doesn't count towards mastery.

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Check what I know

Start here to see which parts you already know.

About 8 minutes

Answer 5 short questions. It shows what to work on next and doesn't count towards mastery.

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Check my progress

When you feel ready, answer on your own to show what you can do.

About 10 minutes

Answer 5 questions. You'll see your score, the answers and explanations at the end. Your result can count towards your course progress.

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Check again

After practising what your progress check showed, check those skills again.

About 10 minutes

Answer 5 questions. You'll see your score, the answers and explanations at the end. Your result can count towards your course progress.

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Review

Come back later to see whether your learning has lasted.

About 10 minutes

Answer 5 questions. You'll see your score, the answers and explanations at the end. A scheduled review counts towards your course progress only when it is due.

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Connections and targeted revision

Transition Elements consolidates The Periodic Table and Electrochemistry, then supplies inorganic evidence used in Practical Skills and Qualitative Analysis.

If an error persists, return to the matching lesson:

  • definition, configuration or physical trend → Foundations;
  • oxidation state, half-equation or E⦵ direction → Redox Systems;
  • ligand identity, exchange equation or haemoglobin → Complex Ions;
  • orbital orientation, absorbed wavelength or hue → Colour;
  • surface steps, intermediate or regeneration → Catalysis.