Water
🎯What you need to be able to do
- Explain why life began in water and why water is still the medium for most life processes.
- Explain the polarity of the water molecule and draw hydrogen bonds between two or more water molecules, with partial charges shown.
- Link cohesion and adhesion to their consequences for organisms: water under tension in xylem, surface tension as a habitat, capillary action in soil and cell walls.
- Explain why water is a good solvent for hydrophilic substances, and why some biological molecules must be hydrophobic.
- Compare the buoyancy, viscosity, thermal conductivity and specific heat capacity of water and air, and relate them to animals that live in each.
- AHL Outline the hypothesis that Earth’s water arrived from asteroids, why it stayed, and why the search for extraterrestrial life is a search for liquid water.
📚The biology
Water as the medium for life
The first cells arose in water, and every cell alive today is still mostly water: the cytoplasm is an aqueous solution in which almost all metabolic reactions take place. Water carries substances round organisms (blood plasma, xylem sap, phloem sap), it is a reactant in hydrolysis and in photosynthesis, and it is a product of condensation reactions and of aerobic respiration. The reason it can do all of this comes down to its structure.
Polarity and hydrogen bonds
A water molecule is one oxygen atom covalently bonded to two hydrogen atoms. The two atoms in each bond do not share the electrons equally: oxygen is far more electronegative and pulls the shared electrons towards itself. That makes the oxygen end of the molecule slightly negative (δ−) and each hydrogen slightly positive (δ+). Because the molecule is bent rather than straight, these partial charges do not cancel out, so the whole molecule is polar.
The δ+ hydrogen of one water molecule is attracted to the δ− oxygen of a neighbour. This attraction is a hydrogen bond. Each one is weak — roughly a twentieth of the strength of a covalent bond — and in liquid water hydrogen bonds are constantly breaking and reforming. But there are an enormous number of them, and collectively they give water its unusual properties.
Draw each molecule as O with two H atoms at an angle. Label O as δ− and each H as δ+. Join an H of one molecule to the O of the next with a dashed line.
A hydrogen bond is an attraction between molecules. The solid lines inside a molecule are covalent bonds. Never draw a hydrogen bond as a solid line.
Cohesion
Cohesion is the attraction of water molecules to each other, caused by hydrogen bonding. It has two consequences the syllabus asks for.
- Water can be pulled under tension. In xylem, water is drawn up the plant as a continuous column because evaporation from leaves pulls on it (B3.2). A column of water can be pulled without breaking because the molecules hold together. A rope of sand would fall apart; a rope of water, in a narrow enough tube, does not.
- Surface tension. At a water surface, molecules are pulled inwards and sideways by their neighbours but not upwards, so the surface behaves like a stretched elastic film. Small animals such as pond skaters and water striders can stand on it, spreading their weight over long legs so the surface is not broken.
Adhesion
Adhesion is the attraction of water to other substances that are polar or charged. Cellulose, the main component of plant cell walls, has many hydroxyl groups and is strongly hydrophilic, so water adheres to it; so do soil particles such as clay, which carry charges.
- Capillary action is movement of water through narrow spaces caused by adhesion to the walls, with cohesion dragging the rest of the water along. In soil, it moves water through the pores between particles towards roots. In plant cell walls, it draws water through the mesh of cellulose fibres, which is how the walls of leaf cells stay wet and how water is drawn out of xylem vessels into the leaf.
Water as a solvent
Because it is polar, water dissolves a wide range of substances. Positive ions are surrounded by the δ− oxygen ends of water molecules and negative ions by the δ+ hydrogen ends; polar molecules such as glucose and amino acids form hydrogen bonds with water. Substances that dissolve readily are hydrophilic. (The details of how solutes are surrounded by water are in D2.3.)
This matters in two ways. Metabolism: most enzymes catalyse reactions between substances dissolved in the cytoplasm, and the substrates can only collide with the active site if they are free to move in solution. Transport: glucose, amino acids, ions, urea and many hormones are carried dissolved in blood plasma; sucrose and amino acids are carried dissolved in phloem sap; mineral ions travel dissolved in xylem sap.
Just as important is what does not dissolve. Non-polar substances such as lipids are hydrophobic, and several functions depend on exactly that:
- membranes are made of phospholipids whose hydrophobic tails form a barrier that water-soluble substances cannot easily cross (B2.1);
- triglycerides can be stored in large amounts without affecting the water balance of a cell;
- waxy cuticles on leaves reduce water loss because water does not pass through them.
Hydrophobic substances that must travel in blood need help: cholesterol and fats are carried inside lipoprotein particles, and oxygen, which is only sparingly soluble, is mostly carried bound to haemoglobin.
Physical properties: water compared with air
Animals that live in water face a very different physical world from animals that live in air. The syllabus names four properties to compare.
Water is about 800 times denser than air, so it provides an upward force that supports an animal’s body. Aquatic animals need less skeletal support; in air, the skeleton carries the full weight.
Water is roughly 50 times more viscous than air. Moving through it takes much more energy, which favours streamlined bodies. Air offers little resistance but also little support.
Water conducts heat around 20 times faster than air. An animal in cold water loses body heat far faster than in cold air at the same temperature.
Water needs a lot of energy to change temperature: about 4.2 J g−1 °C−1, four times more than air per gram. Bodies of water therefore change temperature slowly and are thermally stable habitats.
The high specific heat capacity is itself a consequence of hydrogen bonding: energy supplied to water goes first into breaking hydrogen bonds, not into making the molecules move faster, so the temperature rises only slowly.
Two examples show how animals cope with living across both media.
- The black-throated loon (Gavia arctica) is a diving bird. It is streamlined, and its legs sit far back on its body, which makes it a powerful swimmer against the viscosity of water but so clumsy on land that it rarely walks. Unlike most birds it has solid, dense bones, which reduce buoyancy and let it dive. Dense, oily plumage traps a layer of air that insulates against the high thermal conductivity of cold water.
- The ringed seal (Pusa hispida) lives in Arctic seas under ice. It is streamlined, with flippers for propulsion. Its main insulation is a thick layer of blubber: fur insulates well in air but poorly when wet, because water conducts heat away so effectively. Buoyancy supports its heavy body in water, while on the ice it moves awkwardly.
Where Earth’s water came from AHL
Earth formed hot, and much of the water on or near its surface at the time would have been lost. The leading hypothesis for why Earth has oceans today is that water was delivered from space by collisions with asteroids (and possibly comets) rich in water ice. One line of evidence is that the ratio of deuterium to ordinary hydrogen in the water of some asteroid-derived meteorites closely matches that of Earth’s oceans.
Arriving was not enough: the water also had to stay. Two conditions allowed that. Earth is massive enough for its gravity to retain water vapour in the atmosphere rather than letting it escape into space, and once the planet cooled, temperatures were low enough for water vapour to condense into liquid oceans. The persistence of liquid water for billions of years is what gave life time to evolve.
Water and the search for life elsewhere AHL
Every living thing we know needs liquid water, so the search for life beyond Earth is in practice a search for liquid water. The Goldilocks zone (the habitable zone) is the range of distances from a star at which a planet would be neither too hot, so that water boils away, nor too cold, so that it freezes permanently, but instead can have liquid water on its surface.
Being in the zone is not sufficient — a planet also needs enough mass to hold an atmosphere — and being outside it does not rule water out: moons such as Europa and Enceladus, far beyond the Sun’s Goldilocks zone, are thought to have liquid oceans under ice, kept warm by tidal heating.
✏️Worked example
Specific heat capacity: water 4180 J kg−1 °C−1; air 1005 J kg−1 °C−1.
(a) Calculate the temperature rise of the water and of the air, using \( \Delta T = \dfrac{E}{mc} \).
(b) Explain the difference in terms of the molecular structure of water.
(c) Suggest one consequence for organisms living in the pond.
(a) For the water:
For the air:
The same energy warms the air about 3500 times more than the water. Two things combine to cause this: water’s specific heat capacity is about four times higher, and a cubic metre of water has over 800 times the mass of a cubic metre of air.
(b) Water molecules are polar and are held together by many hydrogen bonds. Much of the energy absorbed is used to break hydrogen bonds rather than to increase the kinetic energy of the molecules, so the temperature rises only a little. Air molecules are not hydrogen bonded, so almost all the energy goes into faster molecular motion — a temperature rise.
(c) The pond is a thermally stable habitat: its temperature changes little between day and night or with short spells of weather. Aquatic organisms, many of which cannot regulate their own body temperature, are therefore not exposed to rapid changes that could slow or denature their enzymes.
📝Practise
Work through these on paper, then reveal the answer. Question 6 is AHL.
1. Explain why a water molecule is polar.
2. Distinguish between cohesion and adhesion, giving one consequence of each for a plant.
3. Glucose is carried dissolved in blood plasma, but triglycerides are not. Explain this difference and state one advantage of triglycerides being insoluble.
4. A ringed seal and a land mammal of similar size are both exposed to a temperature of 0 °C, the seal in seawater and the land mammal in air. Explain which animal loses heat faster, and how the seal is adapted to this.
5. Pond skaters can stand on the surface of water but sink if a drop of detergent is added. Suggest why.
6. AHL A newly discovered planet orbits within its star’s Goldilocks zone. Discuss whether this makes it likely to support life.
🔗Go deeper — other people’s work
These are external resources, not mine. If one stops working, tell me and everything above it on this page still stands.
- Khan Academy — Water, acids and bases in the biology course: short, clear videos on hydrogen bonding, cohesion and adhesion, and the specific heat of water.
- USGS Water Science School — readable explanations of surface tension, capillary action and heat capacity, with everyday examples and photographs.
- NASA Science — “follow the water” articles on the habitable zone, Europa and Enceladus, which make the AHL understandings concrete.