IB Chemistry SL Topic 2 — Metallic Bonding Paper 1 & 2 Trends ~10 min read

s-Block and p-Block Elements

Not all metallic bonds are equally strong. Sodium melts at 371 K but aluminium needs 933 K. The difference comes down to three things about the metal ion — its charge, its size, and how many electrons it released.

📚 What you need to know

What makes a metallic bond strong

Remember what the bond actually is: an attraction between positive ions and the negative electron sea. Anything that makes that attraction stronger makes the metal harder to melt.

WHAT MAKES A METALLIC BOND STRONGERNa⁺1 delocalisedelectron per atomMg²⁺2 delocalisedelectrons per atomAl³⁺3 delocalisedelectrons per atomcharge up, size down, more electrons → stronger metallic bondso the melting point rises from sodium to aluminium
From sodium to aluminium the ion shrinks, its charge grows and it releases more electrons into the sea — all three strengthen the bond.
These are the same two factors — charge and size — that decided ionic lattice strength back in Topic 2. Electrostatic attraction always works the same way, whatever the bonding. If you can explain why MgO melts higher than NaCl, you can already explain why aluminium melts higher than sodium.

Across a period: Na → Mg → Al

Look at the electron configurations and you can see all three factors improving at once:

MetalElectron configurationIon formedDelocalised electrons per atomMelting point / K
Sodium1s22s22p63s1Na+1371
Magnesium1s22s22p63s2Mg2+2923
Aluminium1s22s22p63s23p1Al3+3933

Going from sodium to aluminium, the charge climbs from 1+ to 3+, the number of delocalised electrons climbs from 1 to 3, and the ion actually gets smaller (more protons pulling on the same shell). Every factor points the same way, so the metallic bonding gets much stronger.

Plotting the whole of Period 3 makes the effect obvious — but watch which bars you are allowed to use:

MELTING POINTS ACROSS PERIOD 3Na371Mg923Al933Si1687P317S388Cl172Ar84050010001500melting point / Kmetallic bonding (Na, Mg, Al)Na⁺ → Mg²⁺ → Al³⁺: more delocalised electrons, higher charge, smaller ionthe rest are not metals — different bonding entirely
The blue bars are the metals. Silicon towers over them, but that is giant covalent bonding and belongs to a different explanation.

💡 Only the first three are metals

Down a group: Li → Cs

Down Group 1 the picture reverses. Every one of these metals forms a 1+ ion and donates exactly one delocalised electron, so charge and electron count are fixed. The only thing that changes is size.

Each element down the group has an extra electron shell, so the ion gets steadily bigger. The delocalised electrons are held further from the nucleus and are more shielded, so the attraction weakens — and the melting point falls.

MELTING POINTS DOWN GROUP 1Li454Na371K337Rb312Cs3020100200300400500melting point / Kion gets bigger → weaker attraction to the electrons → lower melting point
Charge and electron count are identical all the way down, so the steady fall is caused by the ions getting bigger.
WORKED EXAMPLE

Explain why magnesium has a much higher melting point than sodium.

Mg forms Mg²⁺ but Na forms only Na⁺ Higher charge on the ion. Each Mg atom donates 2 electrons, each Na atom only 1 More delocalised electrons in the sea. The Mg²⁺ ion is also smaller than Na⁺ stronger electrostatic attraction → more energy needed → higher melting point
WORKED EXAMPLE

Potassium melts at 337 K but lithium melts at 454 K. Both are in Group 1. Explain the difference.

Both form 1+ ions and donate 1 electron each So charge and electron count cannot be the reason. K⁺ has an extra electron shell, so it is bigger than Li⁺ The delocalised electrons sit further from the nucleus and are more shielded. weaker attraction in potassium → lower melting point
A word of caution about aluminium. Look closely at the Period 3 chart and aluminium is only just above magnesium — 933 K against 923 K — even though it has one more charge and one more delocalised electron. These are trends, not rules. Other factors, such as how the ions pack together in the lattice, also affect melting point. That detail is beyond the IB syllabus; you just need to explain the broad trend and not be thrown when the numbers are closer than expected.

💡 Exam tip

⚠️ Common mix-up

That completes Metallic Bonding, and with it all three bonding models — ionic, covalent and metallic. You now have everything you need to look at any substance, work out its structure, and predict how it will behave.

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