K325 / 2027

Lesson 3 of 6 / Respiration in humans

Exchange gases at an alveolus

How do very small air spaces provide fast gas exchange?

In this lesson: Link alveolar structure and blood supply to efficient diffusion.

About 5 min

The key ideaA large total surface area, thin moist walls and maintained gradients make alveoli effective exchange surfaces.

Follow one gas
oxygen diffuses from alveolar air to capillary bloodAlveolar airMoist inner surfaceBlood inBlood outCapillary bloodThin adjacent walls shorten the distance
Oxygen has a net movement from alveolar air into blood. Ventilation replenishes alveolar oxygen; blood flow carries oxygen away.

The two gases exchange at the same time in opposite net directions. The diagram isolates one arrow; it does not imply one-way motion of every molecule. Walls and gaps are enlarged for visibility.

Explanation

Each alveolus has a thin wall, and the neighbouring capillary wall is also thin. Gases cross only a short distance between air and blood. A moist lining allows gases to dissolve before crossing the exchange surface.

The many alveoli together provide a large surface area. This permits a large amount of gas to cross at the same time. A single alveolus is small, but the combined exchange area is large.

Incoming blood has a lower oxygen concentration than alveolar air, so oxygen diffuses into the blood and enters red cells, where much binds to haemoglobin. The blood has a higher carbon dioxide concentration than alveolar air, so carbon dioxide diffuses in the opposite net direction.

Ventilation replenishes oxygen in the alveoli and removes carbon dioxide. Blood flow brings more oxygen-poor blood and takes oxygen-rich blood away. Together they maintain steep gradients for continued diffusion.

In precise gas physiology, these differences can be expressed as partial-pressure gradients. At this level, use the syllabus concentration-gradient explanation consistently. Neither gas is pumped across the alveolar wall by active transport.

Step by step
  1. 1

    State the structural feature

    Choose large surface area, thin walls, moist lining or close capillary supply.

  2. 2

    Explain its effect

    Link the feature to diffusion area, distance, gas dissolution or a maintained gradient.

  3. 3

    Name the gas and direction

    Oxygen and carbon dioxide have opposite net directions here.

Worked example

Damage to alveolar walls

Some walls separating neighbouring alveoli are destroyed. Explain why gas exchange can become less effective.

One way to explain it

Destroying walls reduces the total surface area available for diffusion. Less oxygen can cross into blood in a given time under otherwise comparable conditions, reducing oxygen delivery to body cells.

Why this answer works
  • Fewer walls means less exchange area, even if the remaining air spaces are larger.
  • State the effect on the rate of diffusion.
  • Link the change to oxygen delivery rather than simply saying the lung is weaker.
Is this true? "The capillary wall must be thick to keep air from leaking into blood."

Thin alveolar and capillary walls permit rapid diffusion of dissolved gases. Blood and alveolar air remain in separate spaces.

Try a question

Why does a continuous capillary blood supply help alveolar gas exchange?
You can return to this lesson any time.