IB Biology HL Photosynthesis Paper 1 & 2 ~11 min read

CO2 Enrichment Experiments

Carbon dioxide makes up a tiny fraction of the air, and for a plant in bright sunlight it is usually the bottleneck. So what happens if you give plants more of it? Growers, and climate scientists, have spent decades finding out.

📚 What you need to know

Why enrichment works at all

Carbon dioxide is the substrate of the light-independent reactions: it is the molecule that gets fixed. On a bright, warm day with plenty of water, light and temperature are not the problem — the plant simply cannot get hold of enough CO2. That is a textbook limiting factor situation, and raising the supply raises the rate.

Rate of photosynthesis against CO₂ concentration Measured with light, temperature and water all kept non-limiting ambient air about 420 ppm enriched about 1000 ppmambient air sits on the steep part of the curve which is exactly why adding CO₂ helps0 500 1000 1500 CO₂ concentration / ppm rate of photosynthesisGoing from 420 to 1000 ppm raises the modelled rate by roughly a quarter Beyond that the curve flattens, so still more CO₂ buys very little
The shape explains both the opportunity and its limit. Ambient air sits low on a steep slope, but the slope runs out — enrichment has a ceiling.
Look at where 420 ppm falls on that curve. Plants evolved in air that leaves them permanently short of their own substrate. That is a genuinely strange fact, and it is why commercial growers pump CO2 into greenhouses at all.

Two ways to run the experiment

Enclosed chamber or greenhouseFACE (Free-Air CO2 Enrichment)
Set-upPlants sealed in a chamber with controlled gasRings of pipes release CO2 over open plots of field or forest
Control of variablesExcellent — light, temperature and humidity all controlledPoor — weather, soil and herbivory all vary
RealismLow — conditions are artificial and plants are often young or pottedHigh — mature plants in their natural community and soil
Scale and costSmall and relatively cheapLarge and very expensive
Main weaknessResults may not apply to real ecosystemsHard to attribute differences to CO2 alone

Neither design is simply better. The chamber gives you a clean answer to a narrow question; FACE gives you a messy answer to a realistic one. Good experimental design questions want you to say that.

Designing the study

🧩 What a valid enrichment experiment needs

  1. Control plots at ambient CO2, treated identically in every other way.
  2. In FACE studies, control rings often have the same pipework blowing ordinary air, so any effect of the equipment itself is controlled for.
  3. Replication: several plots at each concentration, to allow a mean and to expose anomalies.
  4. Random allocation of treatments to plots, so soil differences do not bias the result.
  5. A clearly defined dependent variable: rate of CO2 uptake, or biomass, or yield — with units.
  6. Long enough duration to see whether the initial response is sustained across seasons.
The result that surprised people. Short-term enrichment often produces a large jump in photosynthetic rate, but the long-term gain in biomass is usually smaller. Plants acclimate, and growth soon becomes limited by something else — typically nitrogen or water. A limiting factor was removed, and a different one simply took its place.

Worked examples

WE 1

Explain a greenhouse decision

A grower adds CO2 to a greenhouse in summer and sees a large increase in yield, but adding the same amount in winter has almost no effect. Explain. (4 marks)

Point 1: summer conditions In summer, light intensity and temperature are high, so neither is limiting and CO2 is the limiting factor. Point 2: the summer result Raising CO2 therefore increases the rate of the light-independent reactions and so increases yield. Point 3: winter conditions In winter, light intensity (and probably temperature) is low, so one of those is limiting instead. Point 4: the winter result Increasing a factor that is not limiting has no effect on the rate, so the extra CO2 is wasted. Enrichment only pays when CO₂ is the factor in short supply the general principle in point 4 is worth stating explicitly — it is often a mark on its own
WE 2

Calculate a percentage increase

At 420 ppm CO2 a crop fixes carbon at 68 arbitrary units; at 1000 ppm it fixes 83 units. Calculate the percentage increase. (2 marks)

Step 1: the increase 83 − 68 = 15 units Step 2: as a percentage of the original (15 ÷ 68) × 100 = 22.06… an increase of about 22% divide by the original value, not the new one — that error turns 22% into 18%
WE 3

Evaluate an experimental design

A scientist grows seedlings in a sealed chamber at 1000 ppm CO2 and concludes that forests will grow 20% faster as atmospheric CO2 rises. Evaluate this conclusion. (4 marks)

Point 1: a strength Conditions in the chamber are tightly controlled, so the effect can confidently be attributed to CO2 concentration. Point 2: the organisms are not comparable Seedlings are not mature forest trees, and their growth response may be quite different. Point 3: the conditions are not realistic Real forests face variable weather, competition, herbivory and limited soil nutrients, especially nitrogen, which may become the new limiting factor. Point 4: the improvement A long-term FACE study on mature vegetation with replicated ambient control plots would give more valid evidence. A sound experiment, but extrapolated far beyond what it can support good evaluation names the specific limitation and the specific improvement

💡 Exam tips

⚠ Common mistakes

Up next: Photosystems. Enough of the whole-plant view. From here on the topic zooms into the thylakoid membrane, starting with the structures that actually capture the light.

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