IB ESS SL Topic 6 — Atmosphere & Climate Change Paper 1 & 2 Core idea ~9 min read

What the Atmosphere Is Made Of

The atmosphere is a thin skin of gas between us and space, and almost all of it is two gases that do very little to the climate. The gases that matter most for warming, weather and life make up less than one part in a hundred. That imbalance is the whole point of this page.

📚 What you need to know

The composition of dry air

The atmosphere is the outer limit of the biosphere — the boundary between Earth and space, and the reason life is possible here. Its composition has been remarkably steady for a long time, which is exactly why the recent change in one tiny component matters so much.

What dry air is actually made of the gases that shape the climate are hiding in the last one per cent nitrogen 78% oxygen 21% the last 1%, magnified argon 0.93% carbon dioxide 0.04% trace gases 0.03% Nitrogen and oxygen dominate, but they are not greenhouse gases. Water vapour is missing here because it varies from almost 0% to about 4% of the air.
Every percentage you are asked to quote is for dry air. That is why the four figures add up to 100% with no room left for water.
GasRoughly how muchWhat it does
Nitrogen78%Largely unreactive in the air; enters living systems through nitrogen fixation, so it matters to life but not to climate
Oxygen21%Used in aerobic respiration and in combustion; produced by photosynthesis
Argon0.93%An inert gas — it takes part in no reactions and simply makes up the volume
Carbon dioxideabout 0.04%The raw material for photosynthesis and a major greenhouse gas, despite the tiny share
Water vapour0–4%, variableDrives weather, clouds and precipitation, and is the most abundant greenhouse gas
Trace gasestinyMethane, ozone and nitrous oxide have effects on climate and atmospheric chemistry far larger than their concentration suggests
If a percentage looks too small to matter, ask what the gas does rather than how much of it there is. Carbon dioxide is 1 molecule in 2,500 and it still controls the temperature of the planet.

How gases get moved around

Gases do not stay where they are released. If they did, cities would sit under permanent domes of their own pollution. Five processes keep the atmosphere mixed:

Why this matters for pollution: mixing dilutes a pollutant, which usually reduces harm near the source — but it also carries the problem across borders. Acid deposition and long-range dust transport are both consequences of good mixing.

The layers, and why they are layers

The atmosphere is stratified into layers, and the boundaries are set by one thing: how temperature changes with height. Not composition, not pressure. Temperature.

The layers are defined by temperature every time the trend reverses, a new layer begins 0 20 50 85 120 −100 −60 −20 20 60 temperature / °C altitude / km ozone layer TROPOSPHERE STRATOSPHERE MESOSPHERE THERMOSPHERE The stratosphere warms with height because ozone absorbs UV there. Approximate values, drawn to show the shape of the profile rather than exact readings.
The kink at about 50 km is the warmest point of the stratosphere. It sits above the ozone layer because that is where the UV is absorbed first.

Troposphere (surface to about 10 km)

Stratosphere (about 10 to 50 km)

Above these sit the mesosphere and thermosphere. You are unlikely to be asked about them in detail, but knowing they exist — and that each is named for another reversal in temperature — shows you understand the rule.

Differential heating

The Sun does not heat the Earth evenly. Sunlight strikes the equator almost head-on, so the energy is concentrated, and the surface and air there are warm. Nearer the poles the same beam is spread over a larger area and passes through more atmosphere, so those regions are cooler.

That temperature difference is the engine of the whole atmosphere. It drives the tricellular model of atmospheric circulation, which redistributes heat from equator to poles and sets the pattern of rainfall, deserts and biomes you met in the climate and biomes topic.

The atmosphere as a system

Treat it like any other system in this course and the marks come easily.

System partIn the atmosphere
StoragesThe gases themselves, held in different concentrations that change over time through natural and human activity — including greenhouse gases such as carbon dioxide and methane
FlowsConstant movement of gases and particles, driven by air currents, weather systems and global circulation
Natural inputsVolcanic gases, gases released by plants and other organisms, dust blown from deserts, sea spray
Human inputsGreenhouse gases from burning fossil fuels and livestock, air pollutants from industry, aerosols from combustion
OutputsGases removed by photosynthesis and respiration; pollutants and aerosols washed out by precipitation or settling as dry deposition

The atmosphere also exchanges continuously with the other spheres: with the biosphere through photosynthesis and respiration, with the hydrosphere through evaporation and gases dissolving into the oceans, and with the lithosphere through weathering, volcanic activity and dust. Those exchanges are what shape climate patterns and weather events.

Worked examples

WORKED EXAMPLE

Explain why the troposphere is the layer most affected by human air pollution. [3]

Step 1: where the pollution is released Emissions come from the surface — vehicles, industry, farming — so they enter the lowest layer first. Step 2: what the layer does with them The troposphere has strong convection and turbulence, so pollutants are mixed through it rather than staying put. Step 3: why it matters It also holds most of the water vapour and trace gases, so reactions between pollutants, greenhouse gases and particles happen here — affecting air quality, weather and climate. Released at the surface, mixed within the layer, reacting where we live
WORKED EXAMPLE

A student writes: “Carbon dioxide is only 0.04% of the atmosphere, so it cannot be important.” Evaluate this statement. [3]

What is correct The figure is right — carbon dioxide really is a tiny fraction of dry air, far less than nitrogen or oxygen. Why the conclusion is wrong Importance depends on what a gas does, not how much there is. Carbon dioxide absorbs infrared radiation, so it drives the greenhouse effect, and it is the raw material for photosynthesis. The comparison that proves it Nitrogen makes up 78% of the air and does almost nothing to the climate, because it does not absorb infrared radiation. Concentration and importance are not the same thing

💡 Exam tip

⚠ Common mix-up

Up next: How the Greenhouse Effect Works — the energy path in and out, why the wavelength change is the whole trick, and the difference between the natural effect and the enhanced one.

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