A-Level Chemistry: Atomic Structure

Atomic structure opens every A-Level Chemistry course, and its ideas — subshells, ionisation energies, mass spectrometry — echo through the whole two years. This quiz tests the topic at full A-level depth, where GCSE's simple shells give way to s, p and d subshells and the evidence that justifies them.

The electron-structure questions cover subshell energy ordering and capacities, and the two classic Period 3 anomalies every exam paper loves: the dip between magnesium and aluminium (the 3p electron sitting higher in energy than 3s) and the dip between phosphorus and sulfur (paired-electron repulsion in 3p). Ionisation energy is examined from three angles: the factors driving the general increase across a period, the group trend down Group 2, and — the most exam-typical skill — reading a set of successive ionisation energies (578, 1817, 2745, then a jump to 11577) to deduce which group an element belongs to from the position of the great leap.

Mass spectrometry gets the full time-of-flight treatment: the requirements of electron impact ionisation (vaporised sample, high-energy electron beam), what actually happens at the detector — positive ions gaining electrons to generate a current proportional to abundance — and a relative atomic mass calculation from isotopic abundances worked to one decimal place.

One question was tightened during verification so that the ionisation-method options are unambiguous, and every numeric answer has been independently recomputed. The explanations consistently connect observation to theory — why the jump in successive ionisation energies means a new shell, why the current at the detector measures abundance — which is precisely the explain-the-evidence register A-level papers mark in.

  • Write electron configurations with s, p and d subshells and explain their energy order
  • Explain the Mg→Al and P→S ionisation energy dips
  • Deduce an element's group from successive ionisation energy jumps
  • Describe time-of-flight mass spectrometry from ionisation to detection
  • Calculate relative atomic mass from isotopic abundances

Aligned to the physical chemistry core of the DfE A level science subject content as delivered in current specifications: electron configuration, ionisation energy trends and their evidence, time-of-flight mass spectrometry, and relative atomic mass calculations.

Sample question

Which of the following factors contribute to the general increase in first ionisation energy across Period 3?

See the answer

Increasing nuclear charge, Decreasing atomic radius

Across a period, the nuclear charge increases while the shielding remains relatively constant, leading to a stronger attraction between the nucleus and the outer electrons, thus decreasing the atomic radius.

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