IB Biology HL Energy & Matter in Ecosystems Paper 1 & 2 ~9 min read

Nutrient Cycling

The atoms in your body have been used before. Every element a living thing needs has already been through countless other organisms, and it only keeps working because two groups of organisms hand it back and forth: producers who lock it up, and decomposers who set it free.

📚 What you need to know

Autotrophs and heterotrophs feed each other’s gases

The process of photosynthesis, carried out by most autotrophs, takes in carbon dioxide from the atmosphere and converts it into carbon compounds and oxygen. This process is the source of atmospheric oxygen on Earth – every oxygen molecule you breathe was released by a photosynthetic organism.

Aerobic respiration depends on oxygen, so organisms that respire aerobically can make use of the oxygen produced during photosynthesis. In turn they produce carbon dioxide as a waste product, which can be used in photosynthesis. Note that both autotrophs and heterotrophs make use of oxygen in respiration.

The biggest gas exchange on the planet Each process produces exactly what the other one needs. OXYGEN PHOTOSYNTHESIS carbon dioxide + water → glucose + oxygen in autotrophs only AEROBIC RESPIRATION glucose + oxygen → carbon dioxide + water in autotrophs and heterotrophs CARBON DIOXIDEThis is the major interaction between autotrophs and heterotrophs. Huge carbon fluxes take place on Earth every year because of these two processes.
Neither box can run for long without the other. Take one away and the whole system stalls within a few generations.
Scale matters here. The combined photosynthesis of all photosynthetic organisms on Earth removes a huge volume of carbon dioxide and releases a huge volume of oxygen, while the combined respiration of all aerobically respiring organisms does the exact reverse. Processes that transfer carbon like this are called fluxes.

Recycling the elements

In a functioning ecosystem the elements that living organisms need are constantly recycled. Three groups keep that going, and each one has a specific job.

GroupWhat they do with nutrients
ProducersAccess inorganic nutrients from the abiotic environment and convert them into carbon compounds
ConsumersGain organic nutrients by ingesting the tissues of producers and other consumers
DecomposersBreak down the organic molecules in dead tissues and waste matter, making them available again to producers
One nutrient, going round forever The same ring works for carbon, nitrogen, phosphorus, sulfur or potassium. absorbed from soil eaten by consumers death, faeces and waste released back to the soil PRODUCERS CONSUMERS all heterotrophs DECOMPOSERS detritivores and saprotrophs INORGANIC NUTRIENTS in soil, water and airMATTER CYCLES energy does notBreak any one arrow and the nutrients stop moving, whatever the ecosystem.
Compare this with the energy diagrams earlier in the unit. Those had an entrance and an exit. This one has neither.

It is not only carbon

This cycling applies to carbon, which is taken in from the atmosphere by producers and returned to the atmosphere by decomposers. But many other mineral elements are cycled through ecosystems in the same way:

These elements are incorporated into biological molecules within the tissues of living organisms, and then released back into the environment when decomposers break down those tissues after death.

You do not need the detail of the nitrogen or phosphorus cycles here – just the pattern. Whatever the element, the shape is identical: taken up by producers, passed along by feeding, released by decomposers.
Back to where the unit started. Ecosystems are open, so nutrients can drift in and out. But the Earth as a whole is closed to matter, which is exactly why the recycling has to work. There is no delivery of fresh phosphorus from space.

Worked examples

WE 1

Explain the gas interaction

Outline the interaction between autotrophs and heterotrophs in terms of the gases they exchange. (3 marks)

Point 1: photosynthesis Autotrophs take in carbon dioxide and produce carbon compounds and oxygen, which is the source of atmospheric oxygen. Point 2: respiration Aerobically respiring organisms use that oxygen and release carbon dioxide as a waste product, which can be used in photosynthesis. Point 3: the qualifier Both autotrophs and heterotrophs respire, so autotrophs use oxygen as well as producing it. Each process supplies the raw material for the other the third point is the one most students miss – plants are on both sides of this exchange
WE 2

Explain nutrient recycling

Explain how the chemical elements needed by living organisms are recycled in an ecosystem. (4 marks)

Point 1: producers Producers access inorganic nutrients from the abiotic environment and convert them into carbon compounds. Point 2: consumers Consumers gain those nutrients as organic molecules by ingesting the tissues of producers and other consumers. Point 3: decomposers Decomposers break down the organic molecules in dead tissue and waste, releasing inorganic nutrients again. Point 4: the return Those nutrients become available to producers once more, so the same atoms are used repeatedly. Absorbed → eaten → decomposed → absorbed again name all three groups – answers that only mention decomposers cap out at two marks
WE 3

Energy versus matter

Explain why matter is recycled in an ecosystem but energy is not. (3 marks)

Point 1: what happens to matter Atoms are rearranged into different molecules but not lost, so the same elements are used again and again by producers, consumers and decomposers. Point 2: what happens to energy Energy is lost from every trophic level as heat, during respiration and when ATP is used, and radiates into the environment. Point 3: why it cannot come back Organisms cannot capture that heat and use it to build tissue, so energy must be constantly resupplied by sunlight. Matter cycles, energy flows through and leaves this single distinction underpins the whole unit – learn the two verbs

💡 Exam tips

⚠ Common mistakes

That completes Energy & Matter in Ecosystems. The nine pages tell one story: sunlight enters, gets locked into carbon compounds, passes along a chain while leaking heat at every step, and finally leaves as heat – while the atoms it borrowed stay behind and go round again.

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