IB Chemistry SL Topic 2 — Covalent Bonding Paper 1 & 2 Core idea ~8 min read

Coordinate (Dative) Bonds

In a normal covalent bond each atom chips in one electron. In a coordinate bond, one atom supplies both electrons and the other supplies none. That is the only difference — and once the bond has formed, you cannot tell it apart from any other covalent bond.

📚 What you need to know

Where the electrons come from

Normally a bond is a 50/50 arrangement: you bring one electron, I bring one, and we share the pair. A coordinate bond is more like a loan. One atom has a spare lone pair sitting there doing nothing. The other atom has a gap in its outer shell but no electrons to fill it with. So the first atom pushes its whole pair into the gap, and now both atoms share it.

You need both ingredients for this to work:

The ammonium ion, NH4+

This is the one that comes up again and again, so learn it properly.

A hydrogen ion, H+, is just a proton. It has lost its only electron, so its outer shell is completely empty. It cannot share an electron because it does not own one.

Ammonia, NH3, has three bonding pairs and one lone pair on the nitrogen. That lone pair is exactly what H+ is missing. The nitrogen donates it, a fourth N–H bond forms, and the whole thing carries the + charge that came in with the hydrogen ion.

AMMONIA DONATES ITS LONE PAIR TO A HYDROGEN IONNHHHlone pair on nitrogen+H+no electrons at allempty outer shell+NHHHHboth electrons came from the nitrogen
The green circle marks the lone pair being donated. In the product, the top bond has two red dots because both of its electrons came from the nitrogen.
Notice where the charge goes. The + belongs to the whole ion, not to the nitrogen — that is why we draw square brackets around the structure and put the charge outside, at the top right.

💡 The point examiners really want

Two more you should recognise

The same idea turns up all over the course, so it is worth seeing it in a couple of other places:

HYDROXONIUM ION H₃O⁺AMMONIA + BORON TRIFLUORIDEOHHH+water donates a lone pair to H⁺NHHHBFFFnitrogen’s lone pair fills boron’s empty shell
The arrow always starts at the atom that owns the lone pair and points at the atom with the empty space.
WORKED EXAMPLE

Explain why ammonia can form a coordinate bond with H+ but methane cannot.

A coordinate bond needs a lone pair to donate NH₃: nitrogen has 5 outer electrons, 3 are used in bonds → 1 lone pair left. CH₄: carbon has 4 outer electrons, all 4 are used in bonds → no lone pairs. No lone pair means nothing to donate NH₄⁺ forms, but CH₅⁺ does not
WORKED EXAMPLE

A student says the coordinate bond in NH4+ must be weaker than the other three, because only one atom paid for it. Comment on this.

The student is wrong Where the electrons started makes no difference once they are shared. Every N–H bond ends up as one shared pair between the same two nuclei All four bonds are identical in length and strength The arrow is bookkeeping for us, not a property of the bond.
Looking ahead (HL). Coordinate bonding is also how transition metal complexes hold together — for example [Al(H2O)6]3+, where six water molecules each donate a lone pair from their oxygen to the central metal ion. At SL you don’t need the detail; you just need to recognise that coordinate bonding happens beyond simple molecules like NH4+.

⚠️ Common mix-up

Up next: Molecular Shapes — using VSEPR theory to work out the 3D shape of a molecule and predict its bond angles. Everything you have learned about lone pairs is about to pay off.

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