Ecosystems as open systems and the source of energy

Ecosystems (Interaction and interdependence) · Transfers of energy and matter · note 1 of 9

Ecosystems as open systems and the source of energySpec C4.2.1, C4.2.2

In short

Ecosystems are open systems: both energy and matter can enter and exit them. In a closed system only energy can pass in and out. Sunlight is the principal source of energy that sustains most ecosystems, captured by photosynthesis. Exceptions include ecosystems in caves and below the depth of light penetration in oceans, which are sustained by chemical energy.

Open systemClosed system
EnergyCan enter and exitCan enter and exit
MatterCan enter and exitCannot enter or exit
ExampleA natural ecosystem: a lake gains leaves and nutrients in streams, loses water and fishA sealed bottle garden: light enters and heat leaves, but no matter is exchanged

Natural ecosystems are open systems. Matter crosses their boundaries all the time: animals migrate, seeds and pollen blow in, nutrients wash out in rivers, gases are exchanged with the atmosphere.

Sunlight as the principal energy source

Most ecosystems are sustained by sunlight. Producers capture light energy in photosynthesis and convert it to chemical energy in carbon compounds, which then passes to every other organism.

Exceptions are ecosystems with no light. Caves: Movile Cave in Romania, sealed off for millions of years, supports a community based on chemoautotrophic bacteria that oxidise hydrogen sulfide. Deep ocean below the level of light penetration: around hydrothermal vents, chemoautotrophic bacteria oxidise hydrogen sulfide from the vents and support tube worms, clams and crabs. Other deep-sea communities depend on dead organic matter sinking from the sunlit surface, so they still rely on sunlight indirectly.

Exam tip:

Nature of science: 'sunlight sustains most ecosystems' is a generalisation, like a scientific law. It describes a pattern and allows predictions but does not explain it, and a useful generalisation states its exceptions.

Written and checked against the IB Biology SL specification · Updated October 2026

Frequently asked questions

Why is energy lost between trophic levels?

Energy is lost between trophic levels because not all of an organism is eaten, not all food eaten is digested, and much of the absorbed energy is converted to heat in cell respiration. Heat is lost to the environment. Typically only about 10% of the energy passes to the next level, which limits food chain length.

What is the difference between an autotroph and a heterotroph?

An autotroph uses an external energy source, light or oxidation reactions, to synthesise carbon compounds from simple inorganic substances such as carbon dioxide. A heterotroph uses carbon compounds obtained from other organisms, digesting and assimilating them to build the carbon compounds it needs. Both release energy by cell respiration.

Why can matter be recycled in ecosystems but energy cannot?

Matter is recycled because atoms are conserved: decomposers break down dead organic matter and release elements in inorganic forms that producers reuse. Energy cannot be recycled because it is eventually converted to heat by cell respiration, and organisms cannot convert heat back into chemical energy. New energy must keep arriving as sunlight.

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