IB Biology SLTopic 3 — Energy & MatterPaper 1 & 2Core idea~9 min read
Energy Flow in Ecosystems
Sunlight lands on a leaf. Weeks later, some of that same energy is powering the muscles of a hawk. Food chains and food webs are simply maps of that journey — and the arrows mean something very specific.
📘 What you need to know
Photosynthesis converts light energy into chemical energy stored in carbon compounds.
Energy passes along a food chain when one organism eats another, taking in its carbon compounds.
An arrow in a food chain points in the direction the energy and biomass travel, which is from the eaten to the eater.
A food chain is one feeding pathway. A food web shows how many chains connect.
When an organism dies, its stored chemical energy passes to detritivores and saprotrophs.
Energy is not recycled — it flows one way and is lost as heat at every step.
Where the chemical energy comes from
Photosynthesis is the doorway. Producers absorb light energy and use it to build carbon compounds from carbon dioxide and water.
Photosynthesis
carbon dioxide + water → glucose + oxygen (light energy absorbed by chlorophyll)
The glucose that comes out is more than food. Plants convert it into a whole range of carbon compounds:
Starch — the storage form of glucose in plant cells.
Cellulose — the tough material that makes up cell walls.
Lipids — energy-dense storage, especially in seeds.
Amino acids and proteins — built by adding nitrogen taken up from the soil.
Every one of those molecules holds chemical energy in its bonds. That is the energy the rest of the ecosystem lives on.
Notice the wording swap that examiners like: light energy is converted into chemical energy, but chemical energy is transferred between organisms. Converted means the form changed. Transferred means it moved.
What happens when something gets eaten
Follow a single mouthful. A rabbit bites off a blade of grass and swallows it.
The rabbit digests the plant tissue, breaking large molecules into small soluble ones.
It absorbs those small molecules through its gut wall into the blood.
Some are respired straight away, releasing energy to power the rabbit’s life processes.
The rest are built up into rabbit tissue — muscle, fat, skin. The chemical energy is now stored in the rabbit.
Only that last portion is available to whatever eats the rabbit next. That is the whole reason food chains get shorter and shorter as you go up, which we will look at properly on the Energy Losses page.
Food chains and what the arrows mean
A food chain shows one feeding pathway through an ecosystem.
The arrow always points away from the organism that gets eaten.
This is worth labouring because it is the single most common slip in the whole topic. The arrow does not mean “eats”. It means “is eaten by”, because it is tracking where the energy goes.
Two things travel along that arrow: chemical energy and biomass. Biomass is the mass of living material. If you only mention energy, you may be leaving a mark behind.
Food webs
Real ecosystems are messier than a single chain. Most animals eat several things and are eaten by several things. A food web draws all those chains together.
Every arrow is one feeding relationship. Trace any single path and you have a food chain.
Reading a web is a common Paper 1 question. Two skills come up again and again:
Pull out a food chain. Start at a producer and follow arrows upwards, writing each organism in order.
Predict a knock-on effect. If one species is removed, follow the arrows outwards. Anything that ate it has less food; anything it ate is now less heavily eaten.
WORKED EXAMPLE
Using the food web above, suggest what would happen to the snail and thrush populations if a disease killed most of the dandelions. [3]
Step 1: find the direct linkdandelion is the only food source shown for the snailStep 2: first effectless food for snails, so the snail population fallsStep 3: knock-on effectfewer snails means less food for thrushes, so the thrush population also fallssay “suggest” questions want a chain of reasoning, not a one-word answer
What happens to the energy in dead bodies
Not every organism gets eaten. Plenty die of old age, disease or cold. The chemical energy locked in their tissues does not vanish — it passes to the decomposers.
Group
What they do
Examples
Detritivores
Ingest dead material and break it apart inside their bodies
Earthworms, woodlice, dung beetles
Saprotrophs
Release enzymes onto dead material and absorb the digested products
Many fungi and bacteria
Detritivores usually go first, tearing tissue into smaller pieces and hugely increasing the surface area. Saprotrophs then finish the job, releasing inorganic nutrients back into the soil.
Detritivores digest internally, saprotrophs digest externally. That one contrast is the whole answer to a two-mark “distinguish between” question.
Why energy flow is one-way
At every single step — producer, consumer, decomposer — organisms respire, and respiration releases heat. Heat spreads out into the surroundings and no organism can capture it and put it back into a carbon compound.
So energy enters as light, gets passed along a few times, and dribbles away as heat the whole way. It never comes back round. Matter, as you saw on the last page, does come back round. Keep the two straight.
💡 Exam tip
Say arrows show the transfer of energy and biomass, and that they point from the eaten to the eater.
When writing out a food chain, always start with the producer.
Use the phrase stored chemical energy in carbon compounds rather than just “food”. It is the mark-scheme wording.
Detritivores and saprotrophs are usually drawn off to the side of a food chain, not as another link in it.
In “what if this species disappears” questions, mention both what it ate and what ate it.
Never write that energy is recycled. Matter is recycled; energy is not.
⚠ Common mix-up
The arrow does not mean “eats”. Drawing it backwards costs the mark even if the organisms are right.
Food chain and food web are not interchangeable. A chain is one pathway; a web is many chains connected.
Producers do not “make energy”. They convert light energy that was already there into chemical energy.
Photosynthesis is not the opposite of respiration in every way. Plants respire too, all day and all night.
Decomposers are not a trophic level of the food chain in the usual sense, but they still receive energy from every level.
Biomass is not the same as number of organisms. One oak tree is far more biomass than a thousand aphids.
Up next: Obtaining Carbon Compounds — you have seen energy move between organisms. Now let us look at the two completely different ways organisms get hold of the carbon compounds in the first place.
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