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NCERT Exemplar · Q65

Q.Match the property given in Column I with the element given in Column II.
Column I (Property):

(i) Lanthanoid which shows +4 oxidation state
(ii) Lanthanoid which can show +2 oxidation state
(iii) Radioactive lanthanoid
(iv) Lanthanoid which has 4f74f^7 electronic configuration in +3 oxidation state
(v) Lanthanoid which has 4f144f^{14} electronic configuration in +3 oxidation state
Column II (Element):
(a) Pm
(b) Ce
(c) Lu
(d) Eu
(e) Gd
(f) Dy
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The key is to match each lanthanoid property with the element that uniquely exhibits it: Ce for +4, Eu for +2, Pm for radioactivity, Gd for 4f74f^7 in +3 state, and Lu for 4f144f^{14} in +3 state.

Why This Works: The Logic of Lanthanoid Properties

The lanthanoids (elements 57–71) are famous for their similar chemistry, but a few stand out due to special electronic configurations. The +3 oxidation state is the most common for all lanthanoids, but deviations to +2 or +4 happen when doing so leads to a half-filled (4f74f^7) or fully-filled (4f144f^{14}) subshell — these are exceptionally stable. Radioactivity is rare among lanthanoids, with promethium being the only one that has no stable isotopes. Let’s match each property step by step.


  1. Property (i): Lanthanoid which shows +4 oxidation state

    A +4 state means the element loses four electrons. For a lanthanoid, this is favourable only if the resulting 4f4f configuration is stable. Cerium (Ce, atomic number 58) has the ground state [Xe]4f15d16s2[Xe]4f^1 5d^1 6s^2. In the +4 state, it loses all four outer electrons, leaving [Xe][Xe] — an empty 4f4f subshell, which is not particularly stable. But Ce also commonly shows +4 because the 4f14f^1 electron is easily removed, and the resulting Ce4+^{4+} ion is isoelectronic with xenon. The real stability comes from the fact that Ce4+^{4+} has no 4f4f electrons, and the next element, Pr, also shows +4 but less commonly. Ce is the classic example.

    Match: (i) → (b) Ce

  2. Property (ii): Lanthanoid which can show +2 oxidation state

    A +2 state is rare among lanthanoids because losing only two electrons leaves a 4fn4f^n configuration that is often not particularly stable. However, europium (Eu, atomic number 63) has the ground state [Xe]4f76s2[Xe]4f^7 6s^2. In the +2 state, it loses the two 6s6s electrons, giving 4f74f^7 — a half-filled subshell, which is exceptionally stable. Similarly, ytterbium (Yb) gives 4f144f^{14} in +2 state, but Eu is the most famous example.

    Match: (ii) → (d) Eu

  3. Property (iii): Radioactive lanthanoid

    All lanthanoids except promethium (Pm, atomic number 61) have at least one stable isotope. Pm has no stable isotopes; all its isotopes are radioactive, with the longest half-life being about 17.7 years for 145^{145}Pm. This makes it the only radioactive lanthanoid in the list.

    Match: (iii) → (a) Pm

  4. Property (iv): Lanthanoid which has 4f74f^7 electronic configuration in +3 oxidation state …

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