IB Biology HL Gas Exchange Systems Paper 1 & 2 ~13 min read

Gas Exchange in Plants

A leaf has no lungs, no muscles and no blood, yet it solves exactly the same problem you do: get gases in and out fast, across a big moist surface. It also has a problem you do not have – every time it opens the door for carbon dioxide, water walks out.

📚 What you need to know

Inside a leaf

Cut a leaf across and you find layers, each doing one job.

LayerWhat it isWhat it does
Waxy cuticleA waterproof layer over the epidermisImpermeable barrier; stops gases and water vapour leaving through the surface
Upper and lower epidermisA single layer of tightly packed cellsProtects the inside of the leaf; the lower one contains the stomata
Palisade mesophyllColumn-shaped parenchyma cells just under the upper epidermisPacked with chloroplasts, so most photosynthesis happens here
Spongy mesophyllLoosely packed cells with big gaps between themThe air spaces give a huge moist internal surface for gas exchange
Guard cellsTwo curved cells around each stomaOpen and close the pore, controlling gas exchange and water loss
Vascular bundle (vein)Xylem and phloem togetherXylem brings water in, phloem takes sugars out
A slice through a leaf waxy cuticle upper epidermis palisade mesophyll spongy mesophyll lower epidermis chloroplasts inside air spaces xylem (above) phloem (below) guard cellsCO₂ in O₂ and water vapour out Most stomata sit in the lower epidermis, out of the direct sun
The air spaces in the spongy mesophyll are the plant’s real gas exchange surface – damp cell walls with air on the other side, exactly like an alveolus.
Look at where the stomata are: mostly on the underside. The lower surface is shaded and cooler, so less water evaporates from an open pore there. That single fact answers a lot of “suggest why” questions.

Guard cells: the door handle

Each stoma is a gap between two curved guard cells. They work by changing shape.

Open stomata let carbon dioxide diffuse in for photosynthesis and let oxygen diffuse out. Closed stomata stop that, but they also stop water escaping.

The same two cells, two shapes STOMA OPEN STOMA CLOSED pore water in, cells turgid gases diffuse through freely photosynthesis can carry on water lost, cells flaccid gas exchange almost stops but water is saved
Blue arrows show water entering the turgid guard cells; amber arrows show water leaving as they go flaccid.

Transpiration: the price of the ticket

Here is the plant’s dilemma, and it is worth understanding rather than memorising.

The key sentence Transpiration is the inevitable consequence of gas exchange in the leaf

The plant can shut its stomata to save water, but then carbon dioxide stops coming in and photosynthesis slows down. There is no setting where it wins both ways.

Transpiration is not all bad news, though:

Diffusion, not osmosis. Water leaves the leaf as vapour, through a pore, not across a membrane. Osmosis needs a partially permeable membrane, so it is the wrong word here. Say water vapour diffuses out through the stomata.

What changes the rate of transpiration

FactorEffectWhy
Air movementMore wind, faster transpirationStill air lets water vapour build up outside the stomata, making a humid layer that flattens the gradient. Wind blows it away and the gradient gets steeper
TemperatureFaster, up to a pointMore kinetic energy, so water evaporates from the cell walls faster. If it gets too hot the stomata close to save water and the rate drops sharply
Light intensityFaster, then levels offStomata open in the light for photosynthesis. Once they are all open, more light makes no further difference
HumidityHigher humidity, slower transpirationAir outside is already close to saturated, so there is little concentration gradient. At high enough humidity the levels inside and outside are equal and there is no net loss

Measuring it: the potometer

A potometer measures how fast a cut shoot takes up water. Strictly speaking that is water uptake, not transpiration – a little of the water is used in photosynthesis. But that amount is tiny compared with what evaporates, so uptake is a fair stand-in for transpiration rate.

A bubble potometer air bubble cut leafy shoot reservoir resets the bubble airtight rubber bung capillary tube with a scale beaker of water As the shoot pulls water up, the bubble travels along the scale
Two ways to take the reading: measure how far the bubble moves in a set time, or time how long it takes to move a set distance.

🧩 Using a potometer

  1. Cut the shoot and set the apparatus up under water, so no air gets into the tube.
  2. Seal the shoot into the tube with an airtight rubber bung and check every joint.
  3. Let the shoot settle for a few minutes so the rate becomes steady.
  4. Introduce a single air bubble into the capillary tube and note its starting position.
  5. Time how far the bubble moves in a fixed time, then use the reservoir tap to reset it.
  6. Repeat and take a mean, then change one factor and repeat the whole thing.

To change one factor at a time: a fan on different settings varies air movement, a plastic bag over the shoot raises humidity, a lamp at different distances varies light intensity, and a heater or air conditioner varies temperature. Whichever one you change, everything else has to be held constant – moving the plant into a different room to change temperature would also change light and humidity, and your results would mean nothing.

Worked examples

WE 1

Adaptations of the leaf

Explain two ways in which a leaf is adapted for efficient gas exchange. (4 marks)

Adaptation 1: air spaces The spongy mesophyll contains large air spaces between the cells. This gives a large moist internal surface area and lets gases move freely right up to every cell. Adaptation 2: stomata Pores in the lower epidermis, opened and closed by guard cells, let carbon dioxide diffuse in and oxygen diffuse out. They are thin openings in a very thin epidermis, so the diffusion distance is short. Big internal surface + short controlled route in and out two marks per adaptation: name it, then say what it does for diffusion
WE 2

Wind and transpiration

Explain why the rate of transpiration increases when a fan is switched on next to a plant. (3 marks)

Point 1: still air In still air, water vapour builds up just outside the stomata, creating a humid layer. Point 2: the gradient This reduces the water vapour concentration gradient between the inside of the leaf and the air, so less water diffuses out. Point 3: the fan Moving air carries the vapour away, so the gradient becomes steeper again and more water vapour diffuses out of the leaf. Wind removes the humid layer, so the gradient stays steep the mark is for the gradient, not for saying “the wind dries the leaf”
WE 3

The plant’s dilemma

Suggest why a plant closes its stomata on a very hot, dry day, and what the cost of doing so is. (3 marks)

Point 1: the risk On a hot dry day water evaporates from the leaf very quickly, so the plant risks losing more water than the roots can replace and wilting. Point 2: the response Guard cells lose water, become flaccid and close the stomata, greatly reducing transpiration. Point 3: the cost Carbon dioxide can no longer diffuse into the leaf, so the rate of photosynthesis falls. Saving water and photosynthesising are a trade-off “suggest” questions want reasoning, so always name the cost as well as the benefit

💡 Exam tips

⚠ Common mistakes

Up next: Drawing Leaf Structure – the skill of turning a micrograph into a plan diagram that actually earns the marks.

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