Photosynthesis — IB Diploma Biology SL
IB Biology C1.3: energy transformation, pigments, chromatography, absorption and action spectra, limiting factors and CO₂ enrichment.
IB Biology C1.3: energy transformation, pigments, chromatography, absorption and action spectra, limiting factors and CO₂ enrichment.
5 short notes, in the order of the specification. Each one in short:
Photosynthesis transforms light energy into chemical energy when carbon compounds are produced. Carbon dioxide is converted to glucose using hydrogen obtained by splitting water: carbon dioxide + water → glucose + oxygen. The oxygen comes from the splitting of water and is a by-product released by plants, algae and cyanobacteria. This supplies most of the chemical energy in ecosystems.
Chromatography separates photosynthetic pigments because each pigment has a different solubility in the solvent and attraction to the paper or thin-layer plate, so they travel different distances. Pigments are identified by colour and by Rf value, which is the distance moved by the pigment divided by the distance moved by the solvent front. Paper or thin-layer chromatography can be used.
Photosynthetic pigments absorb specific wavelengths of light: chlorophyll absorbs mainly red and blue light and reflects green. Absorbed light excites electrons within the pigment molecule, transforming light energy to chemical energy. An absorption spectrum shows how much light a pigment absorbs at each wavelength; an action spectrum shows the rate of photosynthesis at each wavelength. Their peaks are similar.
A limiting factor is the factor that is furthest from its optimum and so limits the rate of photosynthesis. Light intensity, carbon dioxide concentration and temperature can each be varied experimentally: lamp distance, sodium hydrogencarbonate solutions and water baths. The rate is measured from oxygen production or carbon dioxide uptake, while the other variables are kept constant.
Carbon dioxide enrichment experiments grow plants at higher CO₂ concentrations than today's to predict future rates of photosynthesis and plant growth. Enclosed greenhouse experiments allow careful control of variables. Free-air carbon dioxide enrichment (FACE) experiments release CO₂ over plots in the field, so plants grow in natural conditions, but other variables are harder to control.
5 exam-style questions (14 marks), each with its mark scheme.
Answer the questions11 cards: flip them, mark what you knew, and practise the rest.
Practise the cardsThe whole of molecules (interaction and interdependence) on one page, so you can see where this subtopic fits.
Open the mind mapFree PDFs to print or save.
Write the word equation for photosynthesis.
carbon dioxide + water → glucose + oxygen
Where does the oxygen released by photosynthesis come from?
The splitting of water.
How is an Rf value calculated?
Distance moved by the pigment ÷ distance moved by the solvent front.
What is the difference between an absorption spectrum and an action spectrum?
An absorption spectrum shows light absorbed by a pigment at each wavelength; an action spectrum shows the rate of photosynthesis at each wavelength.
Chlorophyll absorbs mainly red and blue light because only photons with energy matching the gaps between its electron energy levels can excite its electrons. Green light does not match well, so most of it is reflected or transmitted, which is why leaves look green. Accessory pigments such as carotenoids absorb some other wavelengths.
An absorption spectrum shows the percentage of light a pigment absorbs at each wavelength, while an action spectrum shows the rate of photosynthesis at each wavelength. Both peak in blue and red light. The action spectrum stays above zero in green light because accessory pigments absorb some of it, and the similar shapes show absorbed light drives photosynthesis.
Divide the distance moved by the pigment by the distance moved by the solvent front, both measured from the origin line. Rf values lie between 0 and 1 and have no units. Pigments are identified by their colour and by comparing their Rf values with reference values for the same solvent and medium.
FACE (free-air carbon dioxide enrichment) experiments release carbon dioxide from rings of pipes around field plots, holding a higher concentration in open air. They predict how future CO₂ levels will affect photosynthesis and plant growth in natural conditions, unlike enclosed greenhouse experiments, which control variables more easily but are less realistic.
Written and checked against the IB Biology SL specification · Updated October 2026