IB Biology SL Gas Exchange Systems Paper 1 & 2 Core idea | Practical skill ~12 min read

Gas Exchange in Plants

A plant faces a problem no animal has. To photosynthesise it must open pores and let carbon dioxide in — but the moment those pores open, water walks straight out. Everything about leaf structure is a compromise between those two facts.

📚 What you need to know

Inside a leaf

Every layer is doing a different job Light enters from the top; gases enter from the bottom. CO₂ in water vapour out waxy cuticle upper epidermis palisade mesophyll spongy mesophyll lower epidermis vascular bundle air space guard cell stoma The two arrows are the whole plant dilemma in one picture. You cannot have the blue arrow without also having the red one.
Notice where the chloroplasts are concentrated: in the palisade layer near the top, where the light is strongest. The spongy layer below is mostly gaps, because its job is moving gases, not catching light.

The three tissues

AdaptationHow it helps gas exchange
Waxy cuticleStops gases and water vapour leaving through the epidermis, so exchange is forced through the stomata where it can be controlled
Stomata in the lower epidermisProvide the pores for diffusion. Being underneath keeps them cooler, which reduces water loss
Air spaces in spongy mesophyllAllow gases to move freely inside the leaf, maintaining a concentration gradient right up to the cell surfaces
Spongy mesophyll cell shapeThe irregular packing increases the total surface area available for gas exchange
Guard cellsOpen and close the stomata, controlling gas exchange and water loss together
VeinsXylem delivers the water needed for photosynthesis and lost in transpiration; phloem removes the sugars made

Transpiration: the price of gas exchange

Photosynthesis needs carbon dioxide, which can only get in when the stomata are open. But the air inside the leaf is much more humid than the air outside, so whenever the stomata open, water vapour diffuses out. That loss is transpiration.

The trade-off in one line Stomata open → CO₂ in and water out  |  Stomata closed → water saved but photosynthesis stops

Guard cells let the plant choose which problem to have at any moment. Closing the stomata reduces water loss but also reduces gas exchange, and therefore the rate of photosynthesis. Transpiration is the inevitable consequence of gas exchange in the leaf.

It is not all cost, though. Transpiration brings some real advantages:

Get this wording right: water vapour diffuses out of the leaf during transpiration. It is not osmosis. Osmosis requires water to cross a partially permeable membrane, and that is not what is happening at the stoma.

What changes the rate of transpiration

Four factors, four different shapes In all four graphs the vertical axis is rate of transpiration. TEMPERATURE increasing temperature → HUMIDITY increasing humidity → AIR MOVEMENT increasing air movement → LIGHT INTENSITY increasing light intensity → Three of them level off, and each does so for its own reason. Learn the shape and the explanation together; the shape alone earns nothing.
Temperature is the odd one out: it turns downwards. That drop is not physics running out — it is the plant deliberately closing its stomata to save water.
FactorEffectWhy
Air movementMore movement increases the rate, up to a plateauIn still air, water molecules accumulate just outside the stomata, creating a locally humid layer that reduces the concentration gradient. Wind carries them away, restoring a steep gradient
TemperatureHigher temperature increases the rate, then it fallsMore kinetic energy means water evaporates out of the leaf faster. But if it gets too hot, the stomata close to prevent excessive water loss, which cuts the rate sharply
Light intensityBrighter light increases the rate, then it levels offStomata close in the dark and open in the light to allow gas exchange for photosynthesis. Once every stoma is already open, more light makes no further difference
HumidityHigher humidity decreases the rateHumid air outside the leaf means a smaller difference in water vapour concentration between inside and outside, so the gradient is shallower. At high enough humidity an equilibrium is reached and there is no net loss

Measuring the rate: the potometer

🧩 How a bubble potometer works

  1. A cut shoot is sealed into a water-filled tube with a rubber bung, so no air can leak in.
  2. The tube runs into a capillary tube with a scale, whose far end sits in a beaker of water.
  3. An air bubble is introduced into the capillary tube and its starting position recorded.
  4. As the shoot transpires, water is drawn up and the bubble moves along the tube.
  5. Either measure how far the bubble moves in a set time, or time how long it takes to move a set distance.

🤔 What a potometer actually measures

Strictly, a potometer measures the rate of water uptake, not the rate of transpiration — a small amount of the water taken up is used in photosynthesis rather than being lost as vapour. But that fraction is tiny compared with the total that passes through the plant, so water uptake is a reasonable stand-in for transpiration. Saying this in an evaluation question is an easy extra mark.

A mass potometer works differently: it measures the loss in mass of a water-filled tube attached to a shoot over a set time.

Investigating each factor

The control-variables trap: moving a shoot between rooms to change temperature also changes the light level and humidity. If more than one variable changes, you cannot say which caused the result, so the data is not valid.

Worked examples

WORKED EXAMPLE

Explain why the rate of transpiration decreases as humidity increases. [3]

Step 1: what humidity means here High humidity means the air just outside the leaf is close to saturated with water vapour. Step 2: the gradient The difference in water vapour concentration between the air spaces inside the leaf and the air outside becomes smaller. Step 3: the effect A shallower concentration gradient means slower diffusion of water vapour out of the stomata At very high humidity the levels equalise and there is no net loss at all.
WORKED EXAMPLE

A student records a bubble moving 48 mm in 4 minutes in still air, and 90 mm in 5 minutes with a fan running. Calculate both rates and explain the difference. [4]

Step 1: still air 48 ÷ 4 = 12 mm per minute Step 2: with the fan 90 ÷ 5 = 18 mm per minute The rate rises from 12 to 18 mm per minute, an increase of 50% Step 3: explain it In still air, water molecules accumulate outside the stomata and create a locally humid layer, reducing the concentration gradient. The fan carries them away, so the gradient stays steep and more water vapour diffuses out.
WORKED EXAMPLE

Explain why transpiration is described as an inevitable consequence of gas exchange in a leaf. [3]

Point 1: why the stomata must open Carbon dioxide can only enter the leaf through the stomata, so they must be open for photosynthesis to continue. Point 2: what else happens when they are open The air inside the leaf holds far more water vapour than the air outside, so water vapour diffuses out through the same open pores. Point 3: the trade-off Closing the stomata would stop the water loss but would also stop gas exchange and therefore photosynthesis

💡 Exam tip

⚠ Common mix-up

Up next: Drawing Leaf Structure — how to turn that cross-section into the plan diagram an examiner actually wants.

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