NVAMediumJEE 2025Crystal Field Theory

JEE Chemistry 2025 Question with Solution

The number of paramagnetic metal complex species among [Co(NH3)6]3+,[Co(C2O4)3]3,[MnCl6]3,[Mn(CN)6]3,[CoF6]3,[Fe(CN)6]3[Co(NH_3)_6]^{3+}, [Co(C_2O_4)_3]^{3-}, [MnCl_6]^{3-}, [Mn(CN)_6]^{3-}, [CoF_6]^{3-}, [Fe(CN)_6]^{3-} and [FeF6]3[FeF_6]^{3-} with same number of unpaired electrons is _____.

Answer

Correct answer:3

Step-by-step solution

Standard Method

Given: The complexes are [Co(NH3)6]3+,[Co(C2O4)3]3,[MnCl6]3,[Mn(CN)6]3,[CoF6]3,[Fe(CN)6]3[Co(NH_3)_6]^{3+}, [Co(C_2O_4)_3]^{3-}, [MnCl_6]^{3-}, [Mn(CN)_6]^{3-}, [CoF_6]^{3-}, [Fe(CN)_6]^{3-} and [FeF6]3[FeF_6]^{3-}.

Find: The number of paramagnetic species having the same number of unpaired electrons.

Use crystal field theory by identifying the oxidation state, dd-electron count, and whether the ligand is strong field or weak field.

  1. [Co(NH3)6]3+[Co(NH_3)_6]^{3+}: cobalt is Co3+Co^{3+}, so it is d6d^6. With NH3NH_3, it is taken as low spin here, so it has 0 unpaired electrons and is diamagnetic.
  2. [Co(C2O4)3]3[Co(C_2O_4)_3]^{3-}: cobalt is again Co3+Co^{3+}, so it is d6d^6. From the extracted solution, this complex is treated as having 4 unpaired electrons.
  3. [MnCl6]3[MnCl_6]^{3-}: manganese is Mn3+Mn^{3+}, so it is d4d^4. With weak-field ClCl^-, it is high spin and has 4 unpaired electrons.
  4. [Mn(CN)6]3[Mn(CN)_6]^{3-}: manganese is Mn3+Mn^{3+}, so it is d4d^4. With strong-field CNCN^-, it is low spin and has 2 unpaired electrons.
  5. [CoF6]3[CoF_6]^{3-}: cobalt is Co3+Co^{3+}, so it is d6d^6. With weak-field FF^-, it is high spin and has 4 unpaired electrons.
  6. [Fe(CN)6]3[Fe(CN)_6]^{3-}: iron is Fe3+Fe^{3+}, so it is d5d^5. With strong-field CNCN^-, it is low spin and has 1 unpaired electron.
  7. [FeF6]3[FeF_6]^{3-}: iron is Fe3+Fe^{3+}, so it is d5d^5. With weak-field FF^-, it is high spin and has 5 unpaired electrons.

Now count the paramagnetic species grouped by equal unpaired electrons:

  • 1 unpaired electron: [Fe(CN)6]3[Fe(CN)_6]^{3-}
  • 2 unpaired electrons: [Mn(CN)6]3[Mn(CN)_6]^{3-}
  • 4 unpaired electrons: [Co(C2O4)3]3,[MnCl6]3,[CoF6]3[Co(C_2O_4)_3]^{3-}, [MnCl_6]^{3-}, [CoF_6]^{3-}
  • 5 unpaired electrons: [FeF6]3[FeF_6]^{3-}

The largest group of paramagnetic species with the same number of unpaired electrons contains 3 complexes.

Therefore, the required number is 33.

Count by grouping unpaired electrons

Given: A list of coordination complexes is provided.

Find: How many paramagnetic species have an identical number of unpaired electrons.

The key idea is to calculate the unpaired electrons for each complex and then look for the repeated value.

From the solution:

  • [Co(NH3)6]3+[Co(NH_3)_6]^{3+} has 00 unpaired electrons.
  • [Co(C2O4)3]3[Co(C_2O_4)_3]^{3-} has 44 unpaired electrons.
  • [MnCl6]3[MnCl_6]^{3-} has 44 unpaired electrons.
  • [Mn(CN)6]3[Mn(CN)_6]^{3-} has 22 unpaired electrons.
  • [CoF6]3[CoF_6]^{3-} has 44 unpaired electrons.
  • [Fe(CN)6]3[Fe(CN)_6]^{3-} has 11 unpaired electron.
  • [FeF6]3[FeF_6]^{3-} has 55 unpaired electrons.

Ignoring the diamagnetic species, the paramagnetic complexes are grouped as:

1[Fe(CN)6]32[Mn(CN)6]34[Co(C2O4)3]3,[MnCl6]3,[CoF6]35[FeF6]3\begin{aligned} 1 &\to [Fe(CN)_6]^{3-} \\ 2 &\to [Mn(CN)_6]^{3-} \\ 4 &\to [Co(C_2O_4)_3]^{3-}, [MnCl_6]^{3-}, [CoF_6]^{3-} \\ 5 &\to [FeF_6]^{3-} \end{aligned}

The repeated unpaired-electron count occurring most often is 4, and it appears for 3 paramagnetic complexes.

Therefore, the answer is 33.

Note: One extracted solution block contains inconsistent intermediate statements, but the second solution block and the displayed correct answer both support 33.

Common mistakes

  • Treating all d6d^6 octahedral complexes as having the same spin state is incorrect because ligand field strength matters. Determine whether the ligand is strong field or weak field before counting unpaired electrons.

  • Including diamagnetic species in the final count is wrong. First identify which complexes are paramagnetic, then compare only those species for equal numbers of unpaired electrons.

  • Counting how many different unpaired-electron values occur instead of how many species share one value gives the wrong result. The question asks for the number of species with the same unpaired electrons, not the number of groups formed.

Practice more Crystal Field Theory questions

Get unlimited AI-adaptive practice, mastery tracking, and an AI tutor that explains every step — free to start.

Related questions