MCQEasyJEE 2025Transition Elements Properties

JEE Chemistry 2025 Question with Solution

The correct decreasing order of spin only magnetic moment values (BM) of Cu+Cu^+, Cu2+Cu^{2+}, Cr2+Cr^{2+} and Cr3+Cr^{3+} ions is:

  • A

    Cu+>Cu2+>Cr3+>Cr2+Cu^+ > Cu^{2+} > Cr^{3+} > Cr^{2+}

  • B

    Cr3+>Cr2+>Cu+>Cu2+Cr^{3+} > Cr^{2+} > Cu^+ > Cu^{2+}

  • C

    Cu2+>Cu+>Cr2+>Cr3+Cu^{2+} > Cu^+ > Cr^{2+} > Cr^{3+}

  • D

    Cr2+>Cr3+>Cu2+>Cu+Cr^{2+} > Cr^{3+} > Cu^{2+} > Cu^+

Answer

Correct answer:D

Step-by-step solution

Standard Method

Given: The ions are Cu+Cu^+, Cu2+Cu^{2+}, Cr2+Cr^{2+} and Cr3+Cr^{3+}.

Find: The correct decreasing order of their spin-only magnetic moments.

The spin-only magnetic moment depends on the number of unpaired electrons and is given by

μ=n(n+2)BM\mu = \sqrt{n(n+2)} \, \text{BM}

where nn is the number of unpaired electrons.

For Cu+Cu^+:

  • Electronic configuration of CuCu is [Ar]3d104s1[Ar] \, 3d^{10}4s^1.
  • Cu+Cu^+ loses one electron, so configuration becomes [Ar]3d10[Ar] \, 3d^{10}.
  • Number of unpaired electrons n=0n = 0.
μ=0(0+2)=0BM\mu = \sqrt{0(0+2)} = 0 \, \text{BM}

For Cu2+Cu^{2+}:

  • Cu2+Cu^{2+} has configuration [Ar]3d9[Ar] \, 3d^9.
  • Number of unpaired electrons n=1n = 1.
μ=1(1+2)=31.73BM\mu = \sqrt{1(1+2)} = \sqrt{3} \approx 1.73 \, \text{BM}

For Cr2+Cr^{2+}:

  • Electronic configuration of CrCr is [Ar]3d54s1[Ar] \, 3d^54s^1.
  • Cr2+Cr^{2+} loses two electrons, so configuration becomes [Ar]3d4[Ar] \, 3d^4.
  • Number of unpaired electrons n=4n = 4.
μ=4(4+2)=244.90BM\mu = \sqrt{4(4+2)} = \sqrt{24} \approx 4.90 \, \text{BM}

For Cr3+Cr^{3+}:

  • Cr3+Cr^{3+} loses three electrons, so configuration becomes [Ar]3d3[Ar] \, 3d^3.
  • Number of unpaired electrons n=3n = 3.
μ=3(3+2)=153.87BM\mu = \sqrt{3(3+2)} = \sqrt{15} \approx 3.87 \, \text{BM}

Therefore, the decreasing order is Cr2+>Cr3+>Cu2+>Cu+Cr^{2+} > Cr^{3+} > Cu^{2+} > Cu^+. The correct option is D.

Compare by unpaired electrons

Given: Spin-only magnetic moment depends only on the number of unpaired electrons.

Find: The decreasing order of magnetic moments.

Since

μspin=n(n+2)BM\mu_{\text{spin}} = \sqrt{n(n+2)} \, \text{BM}

magnetic moment increases as the number of unpaired electrons increases.

So it is enough to compare unpaired electrons:

  • Cu+:3d100Cu^+ : 3d^{10} \Rightarrow 0 unpaired electrons
  • Cu2+:3d91Cu^{2+} : 3d^9 \Rightarrow 1 unpaired electron
  • Cr3+:3d33Cr^{3+} : 3d^3 \Rightarrow 3 unpaired electrons
  • Cr2+:3d44Cr^{2+} : 3d^4 \Rightarrow 4 unpaired electrons

Hence the decreasing order is Cr2+>Cr3+>Cu2+>Cu+Cr^{2+} > Cr^{3+} > Cu^{2+} > Cu^+. Therefore, the correct option is D.

Common mistakes

  • A common mistake is removing electrons from the 3d3d subshell before the 4s4s subshell for transition-metal ions. That gives incorrect ionic configurations. First remove electrons from 4s4s, then from 3d3d.

  • Another mistake is comparing the ions using total electrons instead of unpaired electrons. Spin-only magnetic moment depends on the number of unpaired electrons, not on the total number of electrons present.

  • Students may memorize chromium and copper neutral configurations but forget to recalculate after ion formation. The exceptional neutral configuration does not mean the ion keeps the same pattern. Always write the ionic configuration explicitly.

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