20.3 Pollution

Syllabus
0610–2026–2027
Topic
20.3
Level

Learning objectives

Compare sewage and fertiliser pollution in water

Untreated sewage and excess fertiliser both alter aquatic ecosystems and can reduce dissolved oxygen, but they enter the system differently.

Pollutant Initial change Effects on the ecosystem
untreated sewage adds organic waste, microorganisms and mineral ions decomposers increase and respire aerobically; dissolved oxygen falls, so oxygen-requiring organisms may die; pathogens may spread
excess fertiliser nitrate and other ions wash into the water producers grow rapidly; later decomposition and aerobic respiration reduce dissolved oxygen, so oxygen-requiring organisms may die

In both cases, connect the pollutant to biological activity, then to oxygen concentration and organism survival.

Fertiliser does not kill fish by directly using oxygen. The oxygen is used during increased aerobic respiration by decomposers.

Explain why persistent plastics harm ecosystems

Non-biodegradable plastics are not broken down by decomposers, so they persist and accumulate in aquatic and terrestrial ecosystems.

Aquatic ecosystems Terrestrial ecosystems
animals may become entangled, injured or unable to move and breathe animals may become trapped or strangled
swallowed plastic can block the digestive system, reduce feeding and cause death ingestion can block digestion and reduce nutrition
microplastics can enter food chains and pass to consumers plastic and associated chemicals can accumulate in organisms and food chains
persistent litter damages habitats persistent litter can cover or damage habitats and soil environments

The key property is persistence: non-biodegradable does not mean harmless. Large pieces and microplastics can cause different but connected effects.

Link greenhouse gases to sources and climate change

Methane and carbon dioxide are air pollutants that increase the enhanced greenhouse effect and contribute to climate change.

Gas Important human-related sources
carbon dioxide burning fossil fuels; deforestation through burning and reduced removal by photosynthesis
methane cattle and other livestock; rice farming; decomposition of waste in landfill

Higher greenhouse-gas concentrations cause more outgoing infrared radiation to be absorbed and re-radiated in the atmosphere. Less energy escapes to space, strengthening the greenhouse effect and raising global temperatures.

The resulting climate change can alter rainfall and habitats, increase extreme conditions, melt ice and raise sea level.

The natural greenhouse effect makes Earth warm enough for life; pollution enhances it. Weather is a short-term condition, while climate change is a long-term shift in patterns.

Trace the six steps of eutrophication

Eutrophication is a causal sequence in which extra mineral ions ultimately reduce dissolved oxygen in water.

  1. The availability of nitrate and other ions increases.
  2. Producers grow more rapidly.
  3. After producers die, their decomposition increases.
  4. Decomposers carry out more aerobic respiration.
  5. The concentration of dissolved oxygen decreases.
  6. Organisms that require dissolved oxygen die.

The link between steps 3 and 5 is respiration: decomposers use dissolved oxygen while breaking down dead producers.

Keep the order exact. Producers first grow, then die and are decomposed; decomposers—not nitrate ions directly—remove the dissolved oxygen through aerobic respiration.