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9701 · 4.2

Bonding and structure — FAQ

Frequently asked questions for 9701 Bonding and structure. Direct answers first, then deeper explanation — then practise with marking.

Why is graphite soft if it's a giant covalent structure?

Graphite has a layered structure. Within each layer, carbon atoms are held by strong covalent bonds, making the layers themselves very strong. However, the layers are held to each other by only weak van der Waals' forces. These layers can easily slide over one another, which gives graphite its soft, slippery feel and makes it useful as a lubricant.

Why are some ionic compounds, like silver chloride, insoluble in water?

While many ionic compounds dissolve in water, it's not a universal rule. For a substance to dissolve, the energy released when ions are hydrated by water molecules must be greater than the energy required to break apart the ionic lattice (the lattice enthalpy). For compounds like AgCl, the lattice enthalpy is very large and the hydration enthalpy is not sufficient to overcome it, so it remains insoluble.

Is solid water (ice) a giant structure or a simple molecular structure?

Ice has a simple molecular structure. It is composed of individual H2OH_2O molecules. In the solid state, these molecules are arranged in a regular lattice held together by hydrogen bonds, which are a type of intermolecular force. Because these are intermolecular forces (albeit the strongest type), they are much weaker than covalent bonds, which is why ice melts at a relatively low temperature (0C0\,^\circ\text{C}) compared to a giant covalent substance like diamond.