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

Absorption Spectra

Leaves are green because green is the colour they throw away. Every other colour gets absorbed and used. An absorption spectrum is simply a graph of which wavelengths a pigment keeps.

📚 What you need to know

Reading the graph

Absorption spectra of the main leaf pigments Look for the two peaks and the deep valley between them chlorophyll a chlorophyll b carotenoidsvery little green absorbed so green light is reflected400 450 500 550 600 650 700 wavelength / nm light absorbed / %Peaks in the blue-violet and the red; a valley through the green
The coloured strip along the bottom is the visible spectrum lined up with the axis. Hold the valley against it and the reason leaves look green is obvious.

The three things to say about this graph

Try answering “why are plants green?” without using the word absorb, and you will see why so many students get it wrong. The full answer is: the pigments absorb blue and red strongly but absorb green poorly, so green light is reflected into your eye. Green is the wavelength the plant has least use for.

Why more than one pigment?

Chlorophyll a is the only pigment that can pass electrons directly into the light-dependent reactions. Everything else is an accessory pigment.

Accessory pigments absorb wavelengths that chlorophyll a handles poorly, and pass the absorbed energy on to chlorophyll a. The plant therefore captures a wider range of the spectrum than chlorophyll a alone could manage, and photosynthesis runs faster in mixed light.

PigmentColourAbsorbs most stronglyRole
Chlorophyll aBlue-greenAbout 430 nm and 662 nmPrimary pigment — found at the reaction centre
Chlorophyll bYellow-greenAbout 453 nm and 642 nmAccessory pigment — broadens the range absorbed
CaroteneOrangeAbout 450–480 nmAccessory pigment; also protects against damage by excess light
XanthophyllYellowBlue regionAccessory pigment
🧠

Primary versus accessory

Think of a relay team. The accessory pigments run the early legs, collecting energy from wavelengths they are good at. Only chlorophyll a crosses the finish line and hands the energy into the reaction.

Measuring an absorption spectrum

🧩 Using a spectrophotometer

  1. Extract the pigments from leaf tissue, and if you want a single pigment, separate them first by chromatography.
  2. Dissolve the pigment in a solvent and put it in a cuvette.
  3. Calibrate the instrument with a cuvette of pure solvent, so the reading is due to the pigment alone.
  4. Shine light of a known wavelength through the sample and record the absorbance.
  5. Repeat across the visible range, in regular steps of wavelength.
  6. Plot absorbance (or percentage absorbed) on the y-axis against wavelength on the x-axis.
Why the peaks shift slightly. The values quoted for peak wavelengths vary a little between sources because they depend on the solvent the pigment is dissolved in, and pigments behave slightly differently inside a living thylakoid membrane. Learn the approximate positions — blue-violet and red — rather than memorising exact numbers.

Worked examples

WE 1

Explain the colour of leaves

Use the absorption spectrum of chlorophyll to explain why leaves appear green. (3 marks)

Point 1: what is absorbed Chlorophyll absorbs strongly in the blue-violet and red regions of the spectrum. Point 2: what is not Absorption is very low around 500 to 570 nm, the green region. Point 3: the consequence Green light is therefore reflected and transmitted rather than absorbed, and it is this reflected light that reaches the eye. Green is the colour chlorophyll absorbs least, so it is the colour we see say “reflected”, not “not used” — the mark is for what happens to the light
WE 2

Justify accessory pigments

Explain the advantage to a plant of containing accessory pigments as well as chlorophyll a. (3 marks)

Point 1: different peaks Accessory pigments such as chlorophyll b and the carotenoids absorb at slightly different wavelengths from chlorophyll a. Point 2: wider capture Together they absorb a broader range of the spectrum than chlorophyll a could alone, so less light is wasted. Point 3: the outcome The energy is passed to chlorophyll a at the reaction centre, so more light energy is available and the rate of photosynthesis is higher. A wider slice of the spectrum, all funnelled into chlorophyll a this matters most in shaded habitats, where the available light is limited and unusual in colour

💡 Exam tips

⚠ Common mistakes

Up next: Absorption & Action Spectra (Skills). You now know which wavelengths are absorbed. The next page asks the harder question: does absorbing a wavelength actually mean the plant can use it?

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