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Exercises · 4.9

Q.In what way is the electronic configuration of the transition elements different from that of the non transition elements?

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Transition elements have partially filled (n−1)d(n-1)d orbitals, while non-transition elements have either fully filled or empty dd orbitals — this difference in dd-orbital occupancy is the defining feature of transition elements.

The key to understanding this difference lies in how electrons fill the energy levels. For transition elements, the (n−1)d(n-1)d subshell gets filled after the nsns subshell, but before the npnp subshell. This creates a unique situation where the dd orbitals are neither completely empty nor completely full — they are partially filled.

Non-transition elements, on the other hand, belong to the ss-block and pp-block. Their dd orbitals are either completely empty (for elements before the transition series) or completely filled (for elements after the transition series, like those in the pp-block of period 4 and beyond).

Let's break this down step by step.

  1. The defining criterion for transition elements

    According to IUPAC, a transition element is an element whose atom has a partially filled dd subshell either in its ground state or in any of its common oxidation states. This is the single most important point.

    Important

    The presence of an incomplete dd-subshell (in the atom or a common ion) is what makes an element a transition element.

  2. Electronic configuration of transition elements

    Take the first transition series (Sc to Zn). The general configuration is [Ar] 3d1−10 4s1−2[Ar]\, 3d^{1-10}\, 4s^{1-2}.

    • For example, Fe (Z=26Z=26): [Ar] 3d6 4s2[Ar]\, 3d^6\, 4s^2 — the 3d3d subshell is partially filled.
    • Even when Fe loses electrons to form Fe2+\text{Fe}^{2+} ([Ar] 3d6[Ar]\, 3d^6) or Fe3+\text{Fe}^{3+} ([Ar] 3d5[Ar]\, 3d^5), the dd subshell remains partially filled. This partial filling is the hallmark of transition elements.
  3. Electronic configuration of non-transition elements

    Non-transition elements belong to the ss-block (Groups 1 and 2) and pp-block (Groups 13 to 18).

    • ss-block elements: Their outermost ss subshell is being filled, and the (n−1)d(n-1)d subshell is completely empty. Example: Na ([Ne] 3s1[Ne]\, 3s^1) — no dd electrons at all.
    • pp-block elements: Their pp subshell is being filled. For elements after the transition series (e.g., Ga, Ge, As), the (n−1)d(n-1)d subshell is completely filled. Example: Ga ([Ar] 3d10 4s2 4p1[Ar]\, 3d^{10}\, 4s^2\, 4p^1) — the 3d3d subshell is full.
    Watch out

    A common mistake is to think that any element with dd electrons is a transition element. But zinc ([Ar] 3d10 4s2[Ar]\, 3d^{10}\, 4s^2) has a completely filled 3d3d subshell, and its common ion Zn2+\text{Zn}^{2+} ([Ar] 3d10[Ar]\, 3d^{10}) also has a full d10d^{10} configuration. So zinc is not a transition element — it is a post-transition element.

  4. The critical difference in a nutshell …

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