IB Biology SL Topic 3 — Photosynthesis Paper 1 & 2 Practical skill ~13 min read

Limiting Factors of Photosynthesis (Skills)

Three things can hold photosynthesis back: light, carbon dioxide and temperature. At any moment one of them is the bottleneck — and the whole skill is designing an experiment where you know which one it is.

📚 What you need to know

What “limiting factor” means

Photosynthesis needs light, carbon dioxide and a workable temperature all at once. Supply plenty of two and starve it of the third, and the rate is set entirely by that third one. Improve it and the rate climbs. Improve anything else and nothing happens at all.

Definition a limiting factor is the factor in shortest supply, which therefore sets the rate
This is why the graphs plateau. The line stops climbing not because the plant has hit a ceiling, but because a different factor has become the bottleneck.

A hypothesis first

A hypothesis is a proposed explanation that may turn out to be true or false. It is provisional: you test it, and repeated testing either supports it or forces you to change it.

A good one for this practical: increasing the light intensity will increase the rate of photosynthesis in Elodea. It is specific, it names the variable, and it can be tested.

The apparatus

An aquatic plant is the sensible choice here. A land plant releases oxygen too, but into the air where you cannot see or collect it. Pondweed releases it into water as countable bubbles.

Measuring photosynthesis in pondweed the oxygen made is collected and counted as bubbles lamp glass tank of water thermometer boiling tube oxygen collects here inverted funnel pondweed ruler sets the distance from lamp to plantThe glass tank is not decoration: it absorbs the lamp’s heat. Without it, moving the lamp would change temperature as well as light.
Every part of this set-up exists to control something. If you can say what each piece is controlling, you can answer almost any question on the method.

🧩 Method for light intensity

  1. Set up the pondweed cut-end upwards under an inverted funnel, with a water-filled boiling tube over the funnel neck.
  2. Use boiled and re-cooled water, then add a set mass of sodium hydrogencarbonate so carbon dioxide is plentiful and not limiting.
  3. Place the lamp a measured distance from the plant, with the glass tank of water in between.
  4. Leave it to settle for a few minutes so the rate becomes steady before you start counting.
  5. Count the bubbles released in three minutes, then divide to get bubbles per minute.
  6. Repeat at several distances, at least three times each, and take a mean.

Variables

TypeWhat it is hereHow it is handled
IndependentLight intensity, set by lamp distanceChanged deliberately, over a range of distances
DependentBubbles per minute, or volume of oxygenMeasured at each distance
ControlTemperatureGlass tank of water absorbs lamp heat; an LED bulb emits little
ControlCarbon dioxide concentrationBoiled, re-cooled water plus a fixed mass of sodium hydrogencarbonate
ControlThe plant itselfSame species, same length of cutting, same piece if possible

Improving it

Light intensity and carbon dioxide

Both give the same shape, and for the same reason.

Rate against light intensity carbon dioxide concentration gives an identical shape the line levels off here something else is now limiting rate rises as light intensity increases0 light intensity rate of photosynthesisOn the slope light is limiting. On the plateau it is not. On the plateau the limit is carbon dioxide or temperature instead.
Whichever factor is on the x-axis, the reading is the same: on the sloping part that factor is limiting, on the flat part it is not.
The commonest exam question here is “why does the graph level off?” The answer is never “the plant is full”. It is that a different factor has become limiting.

Distance and the inverse square law

You control light intensity by moving the lamp, but intensity does not simply halve when you double the distance. It follows an inverse square relationship:

Light intensity and distance light intensity ∝ 1 ÷ d2

Double the distance and the intensity drops to a quarter. Treble it and you are down to a ninth. That is why the x-axis should really be intensity, or 1/d2, rather than raw distance.

Temperature

Temperature behaves differently, because photosynthesis is a pathway of enzyme-controlled reactions.

Rate against temperature a peak, not a plateau, because enzymes are involved optimum more kinetic energy, more collisions enzymes denature0 10 20 30 40 50 temperature / °C rate of photosynthesisThis is the enzyme graph again, with a different label on the y-axis. Rise from collisions, fall from denaturation: the same two explanations.
Do not draw a plateau here. Temperature past the optimum destroys the active sites, so the rate falls rather than holding steady.

Worked examples

WORKED EXAMPLE

A student counts 45 bubbles in 3 minutes with the lamp 10 cm away. Calculate the rate in bubbles per minute. The lamp is then moved to 20 cm. Predict the new rate, assuming light is the limiting factor.

Step 1: rate at 10 cm 45 ÷ 3 = 15 bubbles per minute Step 2: what doubling the distance does to intensity intensity ∝ 1 ÷ d², so 20 cm gives a quarter of the intensity at 10 cm Step 3: apply that to the rate 15 ÷ 4 = 3.75 15 bubbles per minute at 10 cm, about 3.75 at 20 cm the prediction only holds while light is still the limiting factor
WORKED EXAMPLE

Calculate the relative light intensity at 10, 20 and 40 cm from a lamp, taking the value at 10 cm as 100.

Step 1: use 1 ÷ d² and scale so 10 cm gives 100 10 cm: 10000 ÷ 10² = 100 Step 2: repeat for the others 20 cm: 10000 ÷ 400 = 25 40 cm: 10000 ÷ 1600 = 6.25 100, 25 and 6.25 notice the fall is far steeper than the distances suggest — that is the inverse square at work
WORKED EXAMPLE

A graph of rate against light intensity has levelled off. The student increases the light further and sees no change, then warms the water from 15°C to 25°C and the rate rises. Explain both observations. [3]

Step 1: why more light did nothing On the plateau, light is no longer the limiting factor. Step 2: why warming worked Temperature was the limiting factor, so raising it towards the optimum raised the rate. Step 3: name the mechanism More kinetic energy gives more successful collisions and more enzyme–substrate complexes. Light was in excess; temperature was limiting, so only warming increased the rate warming beyond the optimum would reverse this, as the enzymes denature

💡 Exam tip

⚠ Common mix-up

Up next: Carbon Dioxide Enrichment Experiments — scaling this idea up from a beaker of pondweed to whole forests, and what that tells us about a warming world.

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