The key idea:
The strength and type of forces between particles determine melting point, boiling point and electrical conductivity.
We’ll look at four main structure types:
- Giant ionic lattices
- Simple molecular covalent substances
- Giant covalent structures
- Metallic structures
- Bonding & structure
- Made of positive ions (cations) and negative ions (anions).
- Arranged in a regular 3D lattice.
- Held together by strong electrostatic attractions (ionic bonds) between oppositely charged ions.
- Melting & boiling point
- Very high melting and boiling points.
- You must supply a lot of energy to overcome the strong ionic bonds throughout the lattice.
- Electrical conductivity
- Solid:
- Does not conduct electricity → ions are fixed in place and cannot move.
- Molten (liquid) or dissolved in water (aqueous):
- Does conduct → ions are free to move and carry charge.
Sodium chloride (NaCl) has a high melting point and conducts electricity only when molten or in solution → classic ionic behavior.
- Bonding & structure
- Made of small molecules (like H₂O, CO₂).
- Inside each molecule: strong covalent bonds between atoms.
- Between molecules: only weak intermolecular forces (e.g. London forces, dipole–dipole, hydrogen bonding).
- Melting & boiling point
- Generally low (often gases or liquids at room temperature).
- When they melt/boil, you’re breaking intermolecular forces, not the covalent bonds inside each molecule.
- Electrical conductivity
- Do not conduct electricity (no ions, no free electrons).
- Exception: some special cases like acids in water (they form ions), but the pure covalent molecules themselves don’t conduct.
Water (H₂O) has relatively low boiling point compared with ionic or metallic substances, and doesn’t conduct electricity well in pure form → simple molecular covalent.
- Bonding & structure
- Atoms joined by strong covalent bonds in a continuous network (no separate molecules).
- Example:
- Diamond: each C bonded to 4 others in a 3D tetrahedral network.
- Silicon dioxide (SiO₂): each Si bonded to 4 O, each O to 2 Si in a 3D network.
- Graphite: carbon atoms in layers; strong covalent bonds in each layer, weak forces between layers.
- Melting & boiling point
- Very high – you must break a huge number of strong covalent bonds to melt them.
- Electrical conductivity
- Diamond, SiO₂: do not conduct (no free electrons or ions).
- Graphite: does conduct (delocalized electrons move along the layers).
Graphite:
- High melting point → giant covalent network.
- Soft and slippery → layers slide (weak forces between them).
- Conducts electricity along layers → delocalised electrons in its structure.
- Bonding & structure
- Positive metal ions in a regular lattice.
- Surrounded by a “sea” of delocalized electrons that can move throughout the metal.
- Strong electrostatic attraction between ions and electrons → metallic bonding.
- Melting & boiling point
- Usually high – metallic bonds are strong.
- Electrical conductivity
- Solid or liquid: conducts – delocalized electrons move and carry current.
- This is why metals are used in wires and electrical components.
Copper conducts in the solid state, has a high melting point, and is malleable → typical metallic behavior.
This is a classic exam favorite.
- Ions are locked in a rigid lattice.
- They can vibrate but cannot move from place to place.
- No mobile charged particles → no electrical conductivity.
- The lattice breaks down.
- Ions are free to move around in the liquid.
- Positive and negative ions move in opposite directions when a voltage is applied → current flows.
- Water molecules surround and separate the ions (solvation/hydration).
- Again, ions are free to move → solution conducts electricity.
Tp summarize, ionic compounds conduct electricity only when molten or in aqueous solution because their ions are then free to move and carry charge; in the solid state, ions are fixed in place in the lattice.
You can often work backwards from observed properties to figure out what kind of bonding and structure a substance has.
- Check melting and boiling point
- Very high (often > 1000 °C):
→ Could be giant ionic, giant covalent, or metallic. - Low (often gas/liquid at room temperature):
→ Usually simple molecular covalent.
- Test electrical conductivity
- Conducts when solid:
→ Likely metallic (delocalised electrons). - Does not conduct when solid, but does when molten/aqueous:
→ Ionic (mobile ions only when not solid). - Does not conduct in any state:
→ Usually simple covalent or giant covalent (like diamond, SiO₂).
→ Exception: graphite conducts in one direction.
- Check solubility
- Dissolves in water, conducts when dissolved → ionic.
- Dissolves in non-polar solvents (like hexane), low mp/bp, non-conductive → simple molecular covalent.
- Insoluble, very high mp/bp, non-conductive (except graphite) → giant covalent.
- Insoluble, conducts as solid, shiny, malleable → metallic.
- Sodium chloride (NaCl)
- High melting point
- Does not conduct when solid
- Conducts when molten or in solution
→ Giant ionic lattice, ionic bonding.
- Water (H₂O)
- Low boiling point (100 °C)
- Does not conduct (when pure)
- Molecular formula, small molecules
→ Simple molecular covalent with hydrogen bonding between molecules.
- Copper (Cu)
- High melting point
- Conducts when solid
- Malleable, ductile, shiny
→ Metallic bonding, metallic lattice.
- Graphite (C)
- High melting point
- Conducts electricity along layers
- Soft, layers slide
→ Giant covalent structure with delocalised electrons in layers.
- A substance has a very high melting point, does not conduct in solid or molten form, and is very hard. What kind of structure is it likely to have?
- Why does NaCl conduct electricity when dissolved in water but sucrose (sugar) solution does not?
- A shiny, malleable solid conducts electricity when solid and when molten. What type of bonding does it have?
- How do intermolecular forces explain the low boiling point of oxygen (O₂) compared with the high melting point of sodium chloride (NaCl)?