MCQMediumJEE 2025Valence Bond Theory

JEE Chemistry 2025 Question with Solution

The number of species from the following that are involved in sp3d2sp^3d^2 hybridization is [Co(NH3)6]3+,SF6,[CrF6]3,[CoF6]3,[Mn(CN)6]3[Co(NH_3)_6]^{3+}, SF_6, [CrF_6]^{3-}, [CoF_6]^{3-}, [Mn(CN)_6]^{3-} and [MnCl6]3[MnCl_6]^{3-}

  • A

    33

  • B

    44

  • C

    66

  • D

    55

Answer

Correct answer:B

Step-by-step solution

Standard Method

Given: The species are [Co(NH3)6]3+,SF6,[CrF6]3,[CoF6]3,[Mn(CN)6]3[Co(NH_3)_6]^{3+}, SF_6, [CrF_6]^{3-}, [CoF_6]^{3-}, [Mn(CN)_6]^{3-} and [MnCl6]3[MnCl_6]^{3-}.

Find: The number of species showing sp3d2sp^3d^2 hybridization.

Use the ligand field idea:

  • Strong field ligands such as NH3NH_3 and CNCN^- generally lead to inner orbital octahedral complexes with d2sp3d^2sp^3 hybridization.
  • Weak field ligands such as FF^- and ClCl^- generally lead to outer orbital octahedral complexes with sp3d2sp^3d^2 hybridization.
  • SF6SF_6 is a standard example of sp3d2sp^3d^2 hybridization.

Now check each species:

  1. [Co(NH3)6]3+[Co(NH_3)_6]^{3+}: Co3+Co^{3+} is d6d^6 and NH3NH_3 is a strong field ligand, so this is d2sp3d^2sp^3, not sp3d2sp^3d^2.

  2. SF6SF_6: octahedral with sp3d2sp^3d^2 hybridization.

  3. [CrF6]3[CrF_6]^{3-}: Cr3+Cr^{3+} is d3d^3 and FF^- is a weak field ligand, so it forms an outer orbital octahedral complex, i.e. sp3d2sp^3d^2.

  4. [CoF6]3[CoF_6]^{3-}: Co3+Co^{3+} with weak field ligand FF^- gives outer orbital octahedral hybridization, i.e. sp3d2sp^3d^2.

  5. [Mn(CN)6]3[Mn(CN)_6]^{3-}: Mn3+Mn^{3+} with strong field ligand CNCN^- gives d2sp3d^2sp^3, not sp3d2sp^3d^2.

  6. [MnCl6]3[MnCl_6]^{3-}: ClCl^- is a weak field ligand, so the complex shows sp3d2sp^3d^2 hybridization.

Therefore, the species showing sp3d2sp^3d^2 hybridization are

SF6,[CrF6]3,[CoF6]3,[MnCl6]3SF_6, [CrF_6]^{3-}, [CoF_6]^{3-}, [MnCl_6]^{3-}

Hence the number of such species is 44. Therefore, the correct option is B.

The first solution block on the solution's lists only three species in one intermediate sentence, but it finally concludes the count as 44. The second solution explicitly lists all four species, which resolves the discrepancy.

Common mistakes

  • Treating strong field ligands such as NH3NH_3 and CNCN^- as if they produce sp3d2sp^3d^2 hybridization. This is incorrect because they usually cause electron pairing and give inner orbital octahedral complexes. Check whether the complex is d2sp3d^2sp^3 before counting it.

  • Assuming every octahedral complex must be sp3d2sp^3d^2. Octahedral geometry can arise from either d2sp3d^2sp^3 or sp3d2sp^3d^2 hybridization. First identify ligand strength and then decide whether inner or outer orbitals are used.

  • Ignoring the oxidation state of the central metal ion. The dd-electron count changes with oxidation state, and that affects pairing and hybridization. Always determine the metal oxidation state before applying ligand field arguments.

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