IB Biology SL Topic 1 — Water & Its Properties Paper 1 & 2 Core idea ~10 min read

Hydrogen Bonds

Water looks like the most ordinary substance on Earth, and it behaves like nothing else. Almost every strange thing it does comes from one small fact about its shape — and that one fact is why life happens in water at all.

📘 What you need to know

Why water is bent, and why that matters

Start with the covalent bonds. Oxygen shares a pair of electrons with each hydrogen, so all three atoms are properly bonded together. So far, nothing unusual.

The twist is that oxygen does not share fairly. Oxygen is much better at attracting electrons than hydrogen is, so the shared pairs sit closer to the oxygen. That leaves the oxygen end with a small negative charge and each hydrogen end with a small positive charge.

Now add the shape. The two hydrogens sit on the same side, at about 105° to each other, so the molecule is bent like a boomerang. That means the negative and positive parts end up at opposite ends of the molecule instead of cancelling out.

One water molecule The bent shape is what stops the charges cancelling each other out. about 105° O H Hδ− δ+ δ+ oxygen pulls the electrons closer so hydrogen is left slightly positivestill a normal covalent bond the electrons are shared, just shared unfairly Overall the molecule is neutral. The charge is just unevenly spread. A molecule with a positive end and a negative end like this is called polar. The δ symbol means the charge is only partial, not a full ionic charge.
If water were straight instead of bent, the two positive ends would sit on opposite sides and cancel out. It would not be polar, and life as we know it would not work.
Watch that δ symbol. It means partial charge — a fraction of an electron’s worth. It is not the same as the full + or − charge on an ion like Na+. Examiners notice when students blur the two.

What a hydrogen bond actually is

Once you have polar molecules, the rest follows on its own. Opposite charges attract. So the δ+ hydrogen on one water molecule is pulled towards the δ– oxygen on a neighbouring molecule.

That attraction is a hydrogen bond. It is not a covalent bond — no electrons are shared, and it is roughly twenty times weaker. It is just an attraction between molecules that happen to have opposite ends.

Hydrogen bond δ+ hydrogen of one molecule  ↔  δ– oxygen of another molecule
Hydrogen bonds between water molecules Solid lines are covalent bonds inside a molecule. Dashed lines are hydrogen bonds between molecules. O O O Oδ− δ+ δ+hydrogen bond hydrogen bondEach molecule can hold hands with up to four neighbours at once. That is why water behaves like a network rather than a bag of separate particles.
A single hydrogen bond lasts only a fraction of a second before it breaks and a new one forms elsewhere. In a glass of water this is happening constantly, everywhere, all at once.

Weak on their own, strong in numbers

This is the idea students most often get half-right, so it is worth being precise.

An individual hydrogen bond is genuinely weak. It breaks from ordinary thermal movement, which is exactly why water is a runny liquid rather than a solid block — the molecules can still slide past each other.

But there are enormous numbers of them. Each molecule is attracted to several neighbours, and those neighbours to more neighbours, so the whole body of water is held together as a network. Weak × billions = strong, and that combination is what gives water its useful properties.

The best way to picture it: one strand of sticky tape peels off easily. A hundred strands side by side will hold up a chair. Nothing about each strand changed — there are just a lot of them working together.
FeatureCovalent bondHydrogen bond
Where it isInside a molecule, between O and HBetween two separate molecules
What holds itA shared pair of electronsAttraction between δ+ and δ–
StrengthStrongWeak, roughly twenty times weaker
Does it break easily?Needs a chemical reactionConstantly breaking and reforming
Break them all and you getSeparate H and O atomsSeparate water molecules — steam
Boiling water does not break covalent bonds. It only breaks the hydrogen bonds holding the molecules to each other, which is why steam is still H2O. If boiling broke covalent bonds you would get hydrogen and oxygen gas, and kettles would be considerably more exciting.

Hydrogen bonds all over biology

Water is where you meet hydrogen bonds first, but they turn up in nearly every topic you will study this year. The same weak-but-numerous logic applies every time.

WhereWhat the hydrogen bonds doWhy weak bonds are the right choice
DNA double helixHold the two strands together between base pairsStrands must separate for replication — strong bonds would make that impossible
Protein structureFold the chain into helices and sheets, then hold the 3D shapeShape can change when needed, and heat can denature it
Cellulose in plant cell wallsLink neighbouring chains side by sideHuge numbers give real tensile strength to the wall
Enzyme and substrateHelp the substrate settle into the active siteThe product must be able to leave again afterwards
mRNA and tRNAHold the anticodon on the codon during translationtRNA has to let go and be reused
Spot the pattern. Every one of these needs a bond that holds firmly but can be undone without a chemical reaction. That is precisely what a hydrogen bond offers, and it is why biology uses them so heavily.
WORKED EXAMPLE

Explain why water is a polar molecule

Using the structure of a water molecule, explain how it becomes polar. (3 marks)

Point 1: name the bonding Oxygen is joined to two hydrogens by covalent bonds, so electrons are shared. Point 2: the sharing is unequal Oxygen attracts the shared electrons more strongly than hydrogen does. So oxygen becomes δ− and each hydrogen becomes δ+. Point 3: the shape stops it cancelling The molecule is bent at about 105°, so the negative and positive regions sit at opposite ends. Unequal sharing + bent shape = a polar molecule the shape mark is the one most students miss — unequal sharing alone is not enough
WORKED EXAMPLE

Why does DNA use hydrogen bonds rather than covalent ones?

The two strands of a DNA molecule are held together by hydrogen bonds between base pairs. Suggest why this is an advantage. (3 marks)

Point 1: what the strands have to do During replication and transcription the two strands must be pulled apart. Point 2: weak bonds allow that Hydrogen bonds can be broken by enzymes without breaking the strands themselves. Covalent bonds would need far more energy and would damage the molecule. Point 3: but the helix still has to be stable There are millions of base pairs, so millions of hydrogen bonds. Individually weak, collectively strong enough to hold the helix together. Weak enough to separate, numerous enough to stay stable this “weak individually, strong together” argument earns marks across the whole course

💡 Exam tip

⚠ Common mix-up

Up next: Water’s Physical & Chemical Properties — cohesion, adhesion, water as a solvent, and the thermal properties that keep aquatic habitats liveable. Every one of them comes back to the hydrogen bonds on this page.

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