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9701 · 3.6

Intermolecular forces, electronegativity and bond properties — FAQ

Frequently asked questions for 9701 Intermolecular forces, electronegativity and bond properties. Direct answers first, then deeper explanation — then practise with marking.

Why isn't a hydrogen bond a 'real' covalent bond?

A hydrogen bond is an intermolecular force, an attraction between molecules. It's about 5-10% of the strength of a typical covalent bond. A covalent bond is an intramolecular force, involving the sharing of electrons within a molecule, and is much stronger.

Do polar molecules also have van der Waals forces?

Yes, absolutely. Van der Waals forces exist between all molecules because all molecules have electrons that are in constant motion. Polar molecules have both van der Waals forces and permanent dipole-dipole forces (and sometimes hydrogen bonds). The total intermolecular attraction is the sum of all these forces.

How can I quickly determine if a molecule is polar or non-polar?

First, check for polar bonds by looking for atoms with different electronegativities. Second, consider the molecule's shape (from VSEPR theory). If the molecule is symmetrical and the polar bonds are arranged in a way that their dipoles cancel out (e.g., linear CO2CO_2, tetrahedral CCl4CCl_4), the molecule is non-polar. If the shape is asymmetrical (e.g., bent H2OH_2O, trigonal pyramidal NH3NH_3), the dipoles won't cancel, and the molecule will be polar.