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Non-Polar & Polar Molecules

A concise revision guide to molecular polarity, bond dipole cancellation, symmetrical molecules, lone pair effects and the charged rod experiment used to test polar liquids.

Unit: Paper 1
Topic 2: Bonding and Structure
9CH0/01
Dr. Mohammed Al-Fatah

Written by:
Dr. Mohammed Al-Fatah

Chemistry specialist revision notes for A Level Chemistry.

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1

What Makes a Molecule Polar?

A polar molecule has an overall dipole. This means there is a permanent separation of charge across the whole molecule.

Molecular polarity depends on two linked ideas: the polarity of the individual bonds and the 3D shape of the molecule.

A molecule can contain polar bonds but still be non-polar overall if the bond dipoles cancel out.

Definition: A polar molecule has an uneven distribution of electron density, giving one side of the molecule a partial negative character and another side a partial positive character.

Key idea: Do not decide molecular polarity from bond polarity alone. Always check the 3D shape and whether the bond dipoles cancel.

Comparison of non-polar and polar molecular structures with bond dipoles

Overall polarity depends on whether the bond dipoles cancel in the 3D structure.

2

When Polar Bonds Cancel Out

Some molecules contain polar covalent bonds but are non-polar molecules overall.

This happens when the molecule is symmetrical, the same atoms or groups are arranged evenly around the central atom, and there are no lone pairs causing an uneven shape.

The bond dipoles point in different directions and cancel, leaving no overall dipole moment.

Symmetry cancels equal dipoles

If equal polar bonds are arranged symmetrically in 3D, the molecule has no net dipole.

Shape matters

Dipoles cancel in three dimensions, not just on a flat paper diagram.

Tetrahedral carbon tetrachloride molecule with symmetrical bond dipoles

CCl4 has four polar C-Cl bonds, but the tetrahedral arrangement makes the dipoles cancel.

Trigonal planar boron trifluoride molecule with symmetrical bond dipoles

BF3 is trigonal planar and symmetrical, so the B-F bond dipoles cancel.

3D dot-cloud model

Bond dipole cancellation in CCl₄

A 3D model showing four identical polar C-Cl bonds arranged symmetrically around carbon. Each C-Cl bond is polar, but the tetrahedral shape makes the bond dipoles cancel, so CCl₄ is non-polar overall.

Drag to rotate • Scroll to zoom

Key idea: CCl₄ contains four polar C-Cl bonds, but the molecule is tetrahedral and symmetrical. The equal bond dipoles point in different directions and cancel each other. Therefore, there is no overall dipole, so CCl₄ is non-polar.

Polar C-Cl bonds Chlorine is more electronegative than carbon, so each C-Cl bond has electron density pulled towards chlorine.
Symmetrical tetrahedron The four chlorine atoms are arranged evenly around the central carbon atom in a tetrahedral shape.
Overall result The equal bond dipoles cancel in three dimensions, leaving no net dipole across the whole molecule.
3

When a Molecule Is Polar Overall

A molecule becomes polar when the individual bond dipoles do not cancel out.

This commonly happens when the molecule is not symmetrical, or when lone pairs create an uneven distribution of electron density.

If the polar bonds point roughly towards the same side of a molecule, there will be a net dipole across the molecule.

Exam focus: Explain both parts: the molecule has polar bonds, and the shape means the dipoles do not cancel.

3D dot-cloud model

Polarisation in CHCl₃

A 3D model showing the electron cloud density pulled towards the average direction of the three chlorine atoms. The C-Cl bonds are polar and their dipoles do not cancel, so CHCl₃ is a polar molecule.

Drag to rotate • Scroll to zoom

Key idea: CHCl₃ has three polar C-Cl bonds and one C-H bond arranged tetrahedrally around carbon. Because the molecule is not symmetrical, the bond dipoles do not cancel. The overall electron density is shifted towards the chlorine side, making CHCl₃ polar.

Chlorine side Chlorine atoms are more electronegative than carbon and hydrogen, so the shared electron density is pulled towards the Cl atoms.
Asymmetrical tetrahedron CHCl₃ has three Cl atoms and one H atom, so the molecule does not have equal electron pull in all directions.
Overall polarity The average pull of the three C-Cl bonds gives a net dipole towards the chlorine-rich side of the molecule.
4

Lone Pairs Can Make Polarity Trickier

Some molecules are polar even when their bonds are weakly polar or treated as essentially non-polar at this level.

The reason is that lone pairs occupy regions of electron density and can make the overall electron distribution uneven.

PH3 is a useful tricky example: the P-H electronegativity difference is very small, but the molecule is trigonal pyramidal with a lone pair on phosphorus, so it has a small overall dipole.

Important distinction: Bond polarity is about individual bonds. Molecular polarity is about the overall electron distribution across the entire molecule.

3D dot-cloud model

Why PH₃ is polar despite non-polar P-H bonds

A tricky 3D model showing that the P-H bonds in PH₃ are almost non-polar, but the molecule is still polar overall because the lone pair on phosphorus creates an uneven electron distribution.

Drag to rotate • Scroll to zoom

Key idea: the P-H bonds in PH₃ are usually treated as essentially non-polar because the electronegativity difference is very small. However, PH₃ is not symmetrical in electron distribution because phosphorus has a lone pair. The molecule is trigonal pyramidal, and the electron density is unevenly concentrated towards the lone pair region, making PH₃ weakly polar.

P-H bonds The P-H electronegativity difference is very small, so each P-H bond is normally treated as non-polar or only very weakly polar.
Lone pair effect The lone pair occupies one region around phosphorus, creating an uneven distribution of electron density.
Overall polarity The trigonal pyramidal shape means the electron density is not evenly balanced, so PH₃ has a small overall dipole.
5

How to Decide if a Molecule Is Polar

Use a step-by-step approach rather than guessing from the formula.

Step What to check Exam conclusion
1 Decide whether the individual bonds are polar using electronegativity differences. More electronegative atoms attract bonding electrons more strongly.
2 Work out the 3D shape of the molecule, including lone pairs. The same formula drawn flat can hide the real direction of the dipoles.
3 Check whether the dipoles cancel due to symmetry. If the dipoles cancel, the molecule is non-polar overall.
4 If the dipoles do not cancel, identify the direction of the overall dipole. If there is a net dipole, the molecule is polar.
6

Experiment: Charged Rod and Polar Liquids

A simple demonstration of molecular polarity uses a charged rod brought close to a thin jet of liquid flowing from a burette.

If the liquid is polar, its molecules contain permanent dipoles. These dipoles align in the electric field from the charged rod, causing the jet of liquid to be attracted and deflected.

The stronger the overall dipole in the liquid molecules, the greater the deflection of the liquid jet. Non-polar liquids show little or no significant deflection.

Charged rod deflecting a thin jet of polar liquid from a burette

A polar liquid can be attracted towards a charged rod because its molecular dipoles align with the electric field.

7

Common Exam Points

Strong answers use the words polar bonds, 3D shape, symmetrical, dipoles cancel and overall dipole accurately.

Do not stop at “the bonds are polar”

A molecule with polar bonds may still be non-polar overall if the dipoles cancel.

Use cancellation language

For CCl4 and BF3, state that the bond dipoles cancel because the molecule is symmetrical.

Mention lone pairs where relevant

Lone pairs can distort the shape or make electron density uneven, so the molecule may have an overall dipole.

Experimental deflection

A polar liquid is attracted to a charged rod because permanent dipoles align with the electric field.

Check Your Understanding

Use these short activities to check molecular polarity, dipole cancellation, lone pair effects and the charged rod experiment.

QuickSnap

Molecular polarity is decided by both bond polarity and molecular shape. Symmetrical molecules can contain polar bonds but be non-polar overall because the dipoles cancel. Unsymmetrical molecules, or molecules with lone pair effects that create uneven electron density, can be polar overall.

Polar molecule

Has an overall dipole due to uneven electron density across the molecule.

Non-polar molecule

Has no overall dipole because the bond dipoles cancel or the bonds are non-polar.

Symmetry

Equal bond dipoles arranged symmetrically cancel in three dimensions.

Charged rod test

Polar liquids are deflected because their permanent dipoles align with the charged rod.

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FAQs

Use these quick answers to check the common polarity misconceptions that appear in A Level Chemistry questions.

Can a molecule have polar bonds but be non-polar overall?

Yes. If the molecule is symmetrical, the individual bond dipoles can cancel out, leaving no overall dipole. CCl4 and BF3 are common examples.

Why is CHCl3 polar?

CHCl3 has three polar C-Cl bonds and one C-H bond arranged tetrahedrally. The molecule is not symmetrical, so the bond dipoles do not cancel and there is an overall dipole towards the chlorine-rich side.

Why is CCl4 non-polar even though C-Cl bonds are polar?

CCl4 is tetrahedral and symmetrical. The four equal C-Cl bond dipoles point in different directions and cancel in three dimensions.

How does a charged rod show that a liquid is polar?

A polar liquid contains molecules with permanent dipoles. These dipoles align with the electric field from the charged rod, so the liquid jet is attracted and bends towards the rod.

Why can lone pairs affect molecular polarity?

Lone pairs occupy regions of electron density and can make the electron distribution uneven. This can create an overall dipole even when the bond polarity is weak.

Copyright and author footprint: This OLS revision page was written for Online Learning System by Dr. Mohammed Al-Fatah. It is designed for A Level Chemistry revision and should not be copied or redistributed without permission.