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Q.The oxidation state of Fe in [Fe(CO)5][Fe(CO)_5] is (A) +2+2 (B) 00 (C) +3+3 (D) +5+5

CBSECBSE Class XII Board 2023MCQ· 1mImportance★★★★★
✓ Free question

Carbonyl (CO) is a neutral ligand that does not contribute any charge. With five neutral CO ligands, the overall complex is neutral, so Fe must be in the 0 oxidation state. The correct option is (B).

Why this is a trick question — and how to see through it

Most students memorise that transition metals in coordination compounds usually show positive oxidation states like +2 or +3. Iron especially is famous for Fe(II) and Fe(III). So when you see [Fe(CO)5], the instinct is to guess +2 or +3. That instinct is wrong here — and the reason is beautiful.

The key is to ask: What charge does each ligand bring?

CO (carbonyl) is a neutral ligand. It donates a lone pair to the metal but carries no net charge. If every ligand is neutral, and the overall complex is neutral (no square brackets with a superscript charge), then the metal must be in the zero oxidation state.

This is not a rare exception — it is a whole class of compounds called metal carbonyls, where metals often exist in low or zero oxidation states. CO is a strong field ligand that stabilises these low states through back-bonding.

Step-by-step reasoning

1. Identify the charge on each ligand.

CO is carbon monoxide — a neutral molecule. In coordination chemistry, neutral ligands contribute 0 to the oxidation state calculation. Other examples: NH₃, H₂O, PPh₃.

2. Identify the overall charge on the complex.

The formula is written as [Fe(CO)5] — no superscript charge. That means the complex is neutral: overall charge = 0.

3. Set up the oxidation state equation.

Let the oxidation state of Fe be xx.

Each CO contributes 0. There are 5 CO ligands.

So:

x+5(0)=0x + 5(0) = 0

4. Solve for xx.

x=0x = 0

That is the entire calculation — it takes one line once you know the rule.

Watch out

A common mistake is to treat CO as if it were a charged ligand like CN⁻ or Cl⁻. CO is not cyanide — it is neutral. Do not assign it a −1 charge. Also, do not confuse this with ferrocene or other organometallics where the ligand (like cyclopentadienyl) is anionic.

Tip

For any coordination compound, the fastest path to the metal oxidation state is:

Oxidation state of metal = Overall charge of complex − Sum of charges on all ligands

If all ligands are neutral, the metal's oxidation state equals the complex's charge. Here, both are zero.

Why zero is not just "possible" but stable

You might wonder: how can iron be in the 0 state? Isn't that unstable?

In fact, Fe(0) in [Fe(CO)5] is perfectly stable because CO is a strong π-acceptor. It pulls electron density from the metal through back-bonding, relieving the metal of excess negative charge. This is why low oxidation states are common in carbonyl complexes — the ligand itself stabilises them.

For a complex [M(L)n]m[M(L)_n]^{m} where each ligand L has charge qLq_L:

Oxidation state of M=m−n⋅qL\text{Oxidation state of } M = m - n \cdot q_L

✓Final answer

The oxidation state of Fe in [Fe(CO)5][Fe(CO)_5] is 0, so the correct option is (B).

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