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Q.Assertion (A) : Low spin tetrahedral complexes are rarely observed. Reason (R) : Crystal field splitting energy is less than pairing energy for tetrahedral complexes. (A) Both Assertion (A) and Reason (R) are true and Reason (R) is the correct explanation of the Assertion (A). (B) Both Assertion (A) and Reason (R) are true, but Reason (R) is not the correct explanation of the Assertion (A). (C) Assertion (A) is true, but Reason (R) is false. (D) Assertion (A) is false, but Reason (R) is true.

CBSECBSE Class XII Board 2023MCQ· 1mImportance★★★★★
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The assertion is true — low-spin tetrahedral complexes are rare — and the reason is also true: for tetrahedral complexes, the crystal field splitting energy Δt\Delta_t is much smaller than the pairing energy PP, making low-spin configurations energetically unfavourable. The reason correctly explains the assertion, so option (A) is correct.

Why this question hinges on crystal field splitting

In coordination chemistry, the spin state of a complex (high-spin vs low-spin) depends on a tug-of-war between two energies: the crystal field splitting energy (Δ\Delta) and the pairing energy (PP). If Δ>P\Delta > P, electrons prefer to pair up in the lower-energy orbitals (low-spin). If Δ<P\Delta < P, electrons spread out to avoid pairing (high-spin).

For tetrahedral complexes, the splitting pattern is the inverse of octahedral — the dxy,dyz,dzxd_{xy}, d_{yz}, d_{zx} orbitals (called t2t_2) are higher in energy, and the dx2−y2,dz2d_{x^2-y^2}, d_{z^2} orbitals (called ee) are lower. But the key number is the magnitude of Δt\Delta_t (tetrahedral splitting).

Δt≈49Δo\Delta_t \approx \frac{4}{9} \Delta_o

For the same metal ion and ligands, tetrahedral splitting is only about 44% of octahedral splitting.

Since Δo\Delta_o itself is often comparable to or smaller than PP for many metal ions (especially first-row transition metals), Δt\Delta_t ends up being much smaller than PP in almost all cases. That means the energy cost of pairing electrons is never recovered by the splitting — so electrons always occupy orbitals singly before pairing, giving high-spin configurations.

Watch out

A common mistake is to think that low-spin tetrahedral complexes are impossible. They are not — they are just rare. With very strong-field ligands (like CN⁻) and heavy metals (where Δ\Delta is larger), a few examples exist. But for typical exam contexts (first-row transition metals, common ligands), the statement holds.

Step-by-step reasoning

  1. Understand the assertion: "Low spin tetrahedral complexes are rarely observed." This is a factual statement about coordination chemistry. For a tetrahedral complex to be low-spin, the splitting Δt\Delta_t must exceed the pairing energy PP. But because Δt\Delta_t is inherently small (about 4/94/9 of Δo\Delta_o), this condition is seldom met. …

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