IB Biology HL Transport in Animals & Plants Paper 1 & 2 ~11 min read

The Transpiration Stream

A tall tree lifts water a hundred metres into the air with no pump, no muscle and no energy of its own. The whole thing is powered by water evaporating off leaf cells at the top – and by the fact that water molecules refuse to let go of each other.

📚 What you need to know

Start at the top, not the bottom

It is tempting to imagine roots pushing water upwards. Mostly they do not. The stream is pulled from above, and it begins with evaporation.

  1. Inside a leaf, the cell walls lining the air spaces are damp. Water evaporates from these surfaces into the air spaces and diffuses out through the stomata.
  2. Those cells now need water, so they take it from neighbouring cells, and ultimately from the nearest xylem vessel.
  3. Water leaving the xylem puts the water still inside it under tension, a negative pressure.
  4. Because water molecules cohere – hydrogen bonds hold them to each other – the whole column behaves like a rope. Pull the top and the entire thing moves.
  5. That pull reaches all the way down to the ends of the xylem in the roots, drawing more water in from the soil.
One continuous pull, from leaf to root 1 2 3 4water evaporates from the leaf cells and diffuses out through the stomata more water is pulled out of the xylem putting the column under tension cohesion drags the whole column up this pulling force is transpiration pull water is drawn in at the roots replacing what was lost at the topNothing pushes from below; the top of the column is doing the work
The blue arrows inside the stem are the transpiration stream – a single unbroken column of water from root tip to leaf.

Cohesion, adhesion and tension

Three water properties do all the work here, and exam answers usually need at least two of them by name.

PropertyWhat it meansWhat it does in the plant
CohesionWater molecules stick to each other by hydrogen bondsHolds the column together so a pull at the top moves water at the bottom
AdhesionWater molecules stick to other surfaces, especially celluloseLets water travel through cell walls and cling to the sides of the xylem, helping it rise
TensionA negative pressure – the column is being pulled, not pushedGenerated when water leaves the xylem at the top; transmitted right down to the roots

Adhesion in a narrow tube also produces capillary action – water creeping up a fine tube on its own. The xylem is narrow enough for this to help, although on its own it could never lift water to the top of a tree.

Inside the xylem adhesion water sticks to the wall cohesion molecules stick together tension the column is pulled upwards Because the molecules hold on to each other, the column moves as one
The green arrow is the pull. Break the column with an air bubble and the pull is lost, which is why xylem vessels must stay full.
Here is the detail that turns a good answer into a very good one: the water in a xylem vessel is under negative pressure. It is being stretched, like a rope pulled from both ends. That is why the vessel walls have to be reinforced – without lignin the tube would collapse inwards.

Why transpiration is worth the water

Losing water is expensive, but the stream it creates does three useful jobs.

Worked examples

WE 1

Water to the top of a tree

Explain how water is transported from the roots to the leaves of a tall tree. (4 marks)

Step 1: the loss Water evaporates from the surfaces of leaf cells and diffuses out through the stomata. Step 2: the tension Water is drawn out of the xylem to replace it, creating tension, or negative pressure, in the vessel. Step 3: the column Cohesion between water molecules holds the column together, so the pulling force is transmitted all the way down the stem to the roots. Step 4: the name This transpiration pull moves water upwards against gravity, and is described by the cohesion-tension theory. Evaporation creates tension; cohesion passes the pull down the column use the words cohesion, tension and transpiration pull – they are the mark scheme terms
WE 2

The role of adhesion

Explain how adhesion contributes to the movement of water through a plant. (2 marks)

Point 1: what adhesion is Water molecules are attracted to other surfaces, in particular the cellulose in plant cell walls. Point 2: the effect This allows water to move through the cell walls of the leaf, and to cling to the sides of narrow xylem vessels, producing capillary action that helps water rise. Water sticks to the walls as well as to itself cohesion is water to water, adhesion is water to something else – do not swap them
WE 3

A broken column

Suggest why an air bubble in a xylem vessel stops water moving up that vessel. (3 marks)

Point 1: how the pull works Water moves up because tension at the top is transmitted down a continuous column of water held together by cohesion. Point 2: what the bubble does A bubble breaks the column, so there are no cohesive forces across the gap and the pull is not passed on. Point 3: the consequence Water below the bubble is no longer pulled upwards, so that vessel stops transporting, although water can move sideways into neighbouring vessels. No continuous column means no transmitted pull this is also why a potometer must be set up under water

💡 Exam tips

⚠ Common mistakes

Up next: Xylem Vessel Adaptations – the tube itself, and why a dead, hollow, lignified cell is exactly the right thing for the job.

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