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Q.Assertion (A) : Zinc, cadmium and mercury are not considered as transition elements. Reason (R) : These elements have completely filled orbitals in their ground state as well as in their common oxidation states.

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The key idea is that transition elements are defined by having partially filled d-orbitals in their ground state or common oxidation states. Since Zn, Cd, and Hg have completely filled d¹⁰ configurations in both, they fail this criterion. Thus, both Assertion (A) and Reason (R) are true, and (R) correctly explains (A).

Why this approach works

The definition of a transition element is not arbitrary — it stems from the unique chemistry of d-block elements. The IUPAC defines a transition element as an element whose atom has a partially filled d-subshell, or which can give rise to cations with an incomplete d-subshell. This means we must check two things: the ground state electron configuration of the neutral atom, and the configurations of its common oxidation states. If either has a partially filled d-orbital, the element qualifies. If both are completely filled, it does not.

Zinc, cadmium, and mercury sit at the end of their respective d-block series (Group 12). Their neutral atoms have the configuration (n−1)d10ns2(n-1)d^{10} ns^2 — the d-subshell is full. Their common oxidation state is +2, formed by losing the two s-electrons, leaving (n−1)d10(n-1)d^{10} — still full. No partially filled d-orbital appears anywhere. Hence, they are not transition elements.

Let’s walk through the reasoning step by step.

  1. Recall the defining criterion for transition elements.

    A transition element must have an atom or a common ion with an incomplete d-subshell. This is the official IUPAC definition. Elements that have completely filled d-orbitals in both the ground state and all common oxidation states are excluded.

  2. Examine the ground state configurations of Zn, Cd, and Hg.

    • Zinc (Z=30Z = 30): [Ar]3d104s2[Ar] 3d^{10} 4s^2
    • Cadmium (Z=48Z = 48): [Kr]4d105s2[Kr] 4d^{10} 5s^2
    • Mercury (Z=80Z = 80): [Xe]4f145d106s2[Xe] 4f^{14} 5d^{10} 6s^2 In each case, the d-subshell is completely filled (d10d^{10}). No partially filled d-orbital exists in the neutral atom.
  3. Check their common oxidation states.

    The most stable and common oxidation state for all three is +2. For example:

    • Zn loses its two 4s electrons to form Zn2+Zn^{2+}: [Ar]3d10[Ar] 3d^{10}
    • Cd loses its two 5s electrons to form Cd2+Cd^{2+}: [Kr]4d10[Kr] 4d^{10}
    • Hg loses its two 6s electrons to form Hg2+Hg^{2+}: [Xe]4f145d10[Xe] 4f^{14} 5d^{10} In every case, the d-subshell remains completely filled. No partially filled d-orbital appears in any common oxidation state. …

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