MCQMediumJEE 2025Transition Elements Properties

JEE Chemistry 2025 Question with Solution

The metal ions that have the calculated spin only magnetic moment value of 4.9B.M.4.9 \, \text{B.M.} are A. Cr2+Cr^{2+} B. Fe2+Fe^{2+} C. Fe3+Fe^{3+} D. Co2+Co^{2+} E. Mn2+Mn^{2+} Choose the correct answer from the options given below

  • A

    A, C and E only

  • B

    B and E only

  • C

    B and E only

  • D

    A, B and E only

Answer

Correct answer:D

Step-by-step solution

Standard Method

Given: spin-only magnetic moment is 4.9B.M.4.9 \, \text{B.M.}.

Find: which metal ions have this value.

Use the spin-only magnetic moment formula:

μ=n(n+2)B.M.\mu = \sqrt{n(n+2)} \, \text{B.M.}

where nn is the number of unpaired electrons.

For magnetic moment 4.9B.M.4.9 \, \text{B.M.},

μ=4(4+2)=244.9B.M.\mu = \sqrt{4(4+2)} = \sqrt{24} \approx 4.9 \, \text{B.M.}

So the ion must have 44 unpaired electrons.

Now analyze the given ions:

  • Cr2+:[Ar]3d4Cr^{2+} : [\text{Ar}] \, 3d^4, so it has 44 unpaired electrons.
  • Fe2+:[Ar]3d6Fe^{2+} : [\text{Ar}] \, 3d^6, so it has 44 unpaired electrons.
  • Fe3+:[Ar]3d5Fe^{3+} : [\text{Ar}] \, 3d^5, so it has 55 unpaired electrons.
  • Co2+:[Ar]3d7Co^{2+} : [\text{Ar}] \, 3d^7, so it has 33 unpaired electrons.
  • Mn2+:[Ar]3d5Mn^{2+} : [\text{Ar}] \, 3d^5, so it has 55 unpaired electrons.

Therefore, the ions with spin-only magnetic moment close to 4.9B.M.4.9 \, \text{B.M.} are Cr2+Cr^{2+} and Fe2+Fe^{2+} only.

The solution concludes with A, B and E only, but its own working shows E = Mn2+Mn^{2+} has 55 unpaired electrons, not 44. Among the given options, the listed answer is inconsistent with the chemistry.

Since the solution explicitly marks The Correct Option is D and the answer key is (4), the recorded answer is D.

Detailed Checking of Unpaired Electrons

Given: magnetic moment =4.9B.M.= 4.9 \, \text{B.M.}.

Find: which ions correspond to this value.

First determine the number of unpaired electrons using:

4.9=n(n+2)4.9 = \sqrt{n(n+2)}

This matches

4(4+2)=244.9\sqrt{4(4+2)} = \sqrt{24} \approx 4.9

Hence, n=4n = 4.

Check each ion one by one from the given electronic configurations in the solution:

  • A: Cr2+=[Ar]3d4Cr^{2+} = [\mathrm{Ar}]\,3d^4 gives 44 unpaired electrons.
  • B: Fe2+=[Ar]3d6Fe^{2+} = [\mathrm{Ar}]\,3d^6 gives 44 unpaired electrons.
  • C: Fe3+=[Ar]3d5Fe^{3+} = [\mathrm{Ar}]\,3d^5 gives 55 unpaired electrons.
  • D: Co2+=[Ar]3d7Co^{2+} = [\mathrm{Ar}]\,3d^7 gives 33 unpaired electrons.
  • E: Mn2+=[Ar]3d5Mn^{2+} = [\mathrm{Ar}]\,3d^5 gives 55 unpaired electrons.

So the chemically correct set should be A and B only, but that set is not present in the provided options. Because the solution's explicitly identifies option D and the provided correct answer also maps to option D, the answer has been recorded as D with discrepancy noted.

Common mistakes

  • Mistake: Assuming Mn2+Mn^{2+} has 44 unpaired electrons because manganese is often associated with partially filled dd orbitals. Why wrong: Mn2+=3d5Mn^{2+} = 3d^5, which gives 55 unpaired electrons in the high-spin free ion case. Do instead: write the exact ionic configuration before counting unpaired electrons.

  • Mistake: Removing electrons from the 3d3d orbital before the 4s4s orbital while forming transition-metal cations. Why wrong: for cation formation, electrons are removed from 4s4s before 3d3d. Do instead: first obtain the neutral configuration, then remove 4s4s electrons first.

  • Mistake: Using the spin-only formula incorrectly and treating 4.9B.M.4.9 \, \text{B.M.} as corresponding to 55 unpaired electrons. Why wrong: n=5n=5 gives

    μ=5(5+2)=355.92B.M.\mu = \sqrt{5(5+2)} = \sqrt{35} \approx 5.92 \, \text{B.M.}

    Do instead: substitute trial values of nn carefully into μ=n(n+2)\mu = \sqrt{n(n+2)}.

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