IB Chemistry SL Topic 2 — From Bonding Models to Materials Paper 1 & 2 Core skill ~11 min read

Bonding and Physical Properties

Now put the triangle to work. Plot a substance, read off how much ionic or covalent character it has, and you can explain why two compounds that look similar on paper behave completely differently in the lab.

📚 What you need to know

Plotting a compound and its elements

Sodium chloride is the classic starting point, because you can plot all three species and see them separate:

PLOTTING SODIUM AND CHLORINE AND THEIR COMPOUNDIONICPOLARCOVALENTCOVALENTMETALLIC0.7911.522.533.540.00.51.01.52.02.53.0average electronegativity, χ = (χᵀ + χᵝ) ÷ 2electronegativity difference, Δχ%COVALENT%IONIC1000752550502575892sodium chloridesodiumchlorine
Sodium sits in the metallic corner, chlorine in the covalent corner, and the compound they form lands near the ionic apex.
Look at what happened. Two elements that sit at opposite bottom corners combine to give something near the top. That is the triangle showing you, visually, why a metal and a non-metal usually give an ionic compound — and NaCl’s high melting point and conductivity when molten follow directly.
WORKED EXAMPLE

Use electronegativity values to find the position on the bonding triangle of (a) phosphorus, (b) caesium iodide, (c) brass, a copper–zinc alloy.

(a) Phosphorus — an element, χ = 2.2 Same atom both sides, so the difference is zero. (2.2, 0) — bottom middle, 100% covalent (b) Caesium iodide — Cs = 1.0, I = 2.7 χ = (1.0 + 2.7) ÷ 2 = 1.85 Δχ = 2.7 − 1.0 = 1.7 (1.85, 1.7) — in the ionic region (c) Brass — Cu = 1.9, Zn = 1.6 χ = (1.9 + 1.6) ÷ 2 = 1.75 Δχ = 1.9 − 1.6 = 0.3 (1.75, 0.3) — low down and to the left, on the metallic border Which is exactly right — brass is an alloy and behaves like a metal.

Estimating percentage ionic character

The scale running down the right-hand side of the triangle is the useful part. Find your point, run your eye horizontally across, and read off roughly how ionic the bonding is. Height on the triangle is what matters here — the further up, the more ionic.

Aluminium chloride and aluminium oxide make the comparison beautifully. Aluminium is 1.6, chlorine 3.2 and oxygen 3.4:

READING PERCENTAGE IONIC CHARACTERIONICPOLARCOVALENTCOVALENTMETALLIC0.7911.522.533.540.00.51.01.52.02.53.0average electronegativity, χ = (χᵀ + χᵝ) ÷ 2electronegativity difference, Δχ%COVALENT%IONIC1000752550502575892AlCl₃Al₂O₃read straight across from the point to the right-hand scale
Two points only slightly apart on the triangle — but the melting points differ by nearly 1900 °C.

Turning position into properties

That 10% difference in ionic character does not sound like much. The properties tell a different story:

AlCl3Al2O3
Position(2.4, 1.6)(2.5, 1.8)
Ionic character~50%~60%
Melting point192 °C2072 °C
What holds it togetherLargely covalent molecules with weak forces between themA giant ionic lattice of strong attractions

More ionic character means more of the structure is held by strong electrostatic attractions in a giant lattice, so far more energy is needed to melt it. The same reasoning predicts solubility in water and conductivity when molten — both go up as ionic character goes up.

🧩 Using the triangle in an exam

  1. Look up both electronegativities in Section 9 of the data booklet.
  2. Work out the average (x) and the difference (y).
  3. Plot the point on the triangle in Section 17.
  4. Name the region it lands in, and read across for rough % ionic character if you need to compare.
  5. Link that back to properties: more ionic → higher melting point, soluble in water, conducts when molten.
WORKED EXAMPLE

Magnesium chloride melts at 714 °C but aluminium chloride melts at 192 °C. Use electronegativity values (Mg = 1.3, Al = 1.6, Cl = 3.2) to explain the difference.

MgCl₂: Δχ = 3.2 − 1.3 = 1.9 AlCl₃: Δχ = 3.2 − 1.6 = 1.6 MgCl₂ sits higher on the triangle, so it has more ionic character. More ionic character → more of a giant lattice of strong electrostatic attractions MgCl₂ needs far more energy to melt AlCl₃ is largely covalent, so only weak forces between molecules have to be overcome.

💡 Exam tip

⚠️ Common mix-up

Up next: Alloys and Their Properties — what happens when you mix metals together, and why the mixture is usually more useful than either pure metal.

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