Q.What is meant by unidentate, didentate and ambidentate ligands? Give two examples for each.
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Start your 14-day free trial to unlock the full solution →Ligands are classified by the number of donor atoms they use to bond to a metal centre: unidentate (one donor atom), didentate (two donor atoms), and ambidentate (one ligand with two different possible donor atoms). Examples: unidentate — , ; didentate — , ; ambidentate — , .
The Core Idea: How Many Hands Does a Ligand Use?
Think of a ligand as a molecule or ion that "holds on" to a central metal atom. The number of donor atoms — the specific atoms that actually form a coordinate bond — determines the ligand's denticity. This is not about how many atoms the ligand has, but how many it uses to grip the metal.
A single donor atom means one bond. Two donor atoms mean two bonds, forming a ring (a chelate). And an ambidentate ligand is a special case: it has two different donor atoms, but it can only use one at a time — it's like a tool with two different ends, each capable of gripping, but you can only use one end per grip.
1. Unidentate Ligands
Definition: A ligand that donates a single lone pair of electrons to the metal centre, forming one coordinate bond. The prefix uni- means one, and dentate comes from the Latin for "tooth" — one tooth to bite with.
Examples:
- Chloride ion (): The chloride ion has three lone pairs, but it uses only one to bond. In a complex like , each is unidentate.
- Ammonia (): The nitrogen atom has one lone pair. It donates that lone pair to form a bond, as in .
A common mistake is to think that a ligand with many lone pairs (like with three) is automatically polydentate. Denticity is about how many lone pairs are actually used to bond to the same metal centre. uses only one, so it is unidentate.
2. Didentate Ligands
Definition: A ligand that donates two lone pairs (from two different donor atoms) to the same metal centre, forming two coordinate bonds. This creates a ring structure — a chelate (from Greek chele, meaning claw). Chelate complexes are generally more stable than similar complexes with unidentate ligands (the chelate effect).
Examples:
- Ethylenediamine (, ): Each nitrogen atom has a lone pair. Both nitrogens bond to the same metal, forming a five-membered ring. Example: .
- Oxalate ion (, ): Each negatively charged oxygen atom donates a lone pair. Both oxygens bond to the same metal, forming a five-membered ring. Example: .
To quickly identify a didentate ligand, look for two atoms (usually N, O, or S) that are separated by a chain of 2–3 atoms. This spacing allows the ligand to "bite" the metal comfortably without strain, forming a stable 5- or 6-membered chelate ring.
3. Ambidentate Ligands …
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