IB Biology HL Photosynthesis Paper 1 & 2 ~13 min read

Limiting Factors of Photosynthesis (Skills)

Three things can hold photosynthesis back, but only one of them is holding it back at any given moment. Learning to spot which one — from the shape of a graph — is the whole skill on this page.

📚 What you need to know

The idea in one sentence

Definition A limiting factor is the factor whose shortage is restricting the rate of a process at a particular moment.

The consequence is not obvious until you say it out loud: if a factor is not the one in short supply, adding more of it changes nothing. Doubling the light on a plant that has run out of carbon dioxide gains you nothing at all.

🧠

The production line

A factory line runs at the speed of its slowest station. Hiring more staff anywhere else changes nothing. Photosynthesis works the same way — find the slow station before you spend money.

Reading a limiting factor graph

Light intensity, at three different sets of conditions Identical at low light; completely different once they level off high CO₂, 25°C high CO₂, 15°C low CO₂, 15°C all three curves overlap here light is limitingas each curve levels off, something else has taken overlight intensity rate of photosynthesisRising = light is limiting. Flat = carbon dioxide or temperature is limiting The curves separate only after light has stopped being the bottleneck
The three curves are deliberately identical at the left-hand end. At low light, nothing else matters — and that is exactly how you know light is the limiting factor there.

The two-part answer examiners want

Any question on this graph splits the same way:

Never write “light is the limiting factor” about a whole graph. It is limiting on the slope and not limiting on the plateau. Always say where on the curve you mean, and you will pick up marks other students drop.

Each factor in turn

FactorWhich stage it affectsShape of the graph
Light intensityLight-dependent reactions — controls the supply of ATP and reduced NADPRises, then plateaus when another factor takes over
CO2 concentrationLight-independent reactions — it is the substrate that is fixedRises, then plateaus; usually the limiting factor outdoors on a bright day
TemperatureAll enzyme-catalysed steps, especially the Calvin cycleRises to an optimum then falls sharply as enzymes denature

The temperature curve is the odd one out and that is exactly why it is examined. Light and carbon dioxide curves plateau; the temperature curve peaks and then falls, because too much of it damages the enzymes rather than simply failing to help.

The compensation point

Plants respire constantly. At very low light, respiration releases more carbon dioxide than photosynthesis consumes, so the plant is a net producer of CO2. As light intensity rises, photosynthesis catches up.

Definition The compensation point is the light intensity at which the rate of photosynthesis exactly equals the rate of respiration, so there is no net exchange of gases.

Below it the plant is losing carbohydrate; above it, it is gaining. Shade-adapted plants have a lower compensation point, which is what lets them survive on a woodland floor.

Measuring the rate

🧩 Investigating light intensity with pondweed

  1. Place a piece of pondweed in a test tube of hydrogencarbonate solution, which supplies a constant, plentiful source of CO2.
  2. Stand the tube in a water bath to keep temperature constant — the lamp itself is a heat source, so this matters.
  3. Change light intensity by moving the lamp to measured distances, and allow a few minutes to equilibrate at each one.
  4. Measure the rate as bubbles of oxygen per minute, or more accurately as the volume of gas collected in a set time using a capillary tube.
  5. Repeat each distance and calculate a mean.
  6. Light intensity falls with the square of the distance, so plot against 1 ÷ distance2 rather than against distance, or use a light meter.
Why counting bubbles is a weak method. Bubbles are not all the same size, they are easy to miscount, and not all the oxygen produced actually leaves as gas. Collecting and measuring the volume of gas is more valid and more precise. If a question asks you to improve a method, this is almost always an available mark.

Worked examples

WE 1

Explain the shape of a curve

Explain the shape of a graph of the rate of photosynthesis against light intensity. (4 marks)

Point 1: the rising section The rate increases with light intensity, so light intensity is the limiting factor here. Point 2: why More light is absorbed by the pigments, so more ATP and reduced NADP are produced for the Calvin cycle. Point 3: the plateau Beyond a certain intensity the rate stops increasing, so light is no longer limiting. Point 4: what is limiting instead Another factor — carbon dioxide concentration or temperature — has become the limiting factor. Light limits the slope; something else limits the plateau name the two possible alternative factors; a vague “something else” may not score
WE 2

Identify the limiting factor

Two curves are plotted for the same plant. Both rise identically at low light, but one plateaus at a higher rate when the CO2 concentration is raised. Explain what this shows. (3 marks)

Point 1: the identical section At low light intensity both curves are the same, so light was limiting in that region and CO2 made no difference. Point 2: the higher plateau Raising CO2 raised the plateau, so at high light intensity CO2 concentration was the limiting factor. Point 3: the conclusion Which factor is limiting depends on the conditions — it changes as light intensity changes. Light limits at low intensity; CO₂ limits at high intensity “the curves are identical at low light” is itself a marking point — do not skip it
WE 3

Explain a temperature result

A grower raises the greenhouse temperature from 25°C to 45°C and the rate of photosynthesis falls. Explain why, and state how this graph differs from the light intensity graph. (3 marks)

Point 1: the cause Above the optimum, the enzymes of the Calvin cycle begin to denature as the bonds holding their tertiary structure break. Point 2: the consequence The active sites change shape, substrates can no longer bind, and the rate falls. Point 3: the difference in shape The light intensity graph levels off at a plateau, whereas the temperature graph peaks at an optimum and then falls. Too much light does nothing; too much heat does damage the word denature is essential here

💡 Exam tips

⚠ Common mistakes

Up next: CO2 Enrichment Experiments. If carbon dioxide is so often the factor holding plants back, the obvious move is to add more of it — which is exactly what growers and climate scientists have been testing.

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