IB ESS HL Topic 2 — Ecology Paper 1 & 2 Core idea ~9 min read

Cutting Our Impact on the Carbon Cycle

There are only two ways to bring the carbon cycle back towards balance: put less carbon into the atmosphere, or take more out. Every strategy in this topic is one of those two, and answers get much sharper once you sort them that way instead of memorising a list.

📘 What you need to know

Two levers, that is all

Every strategy does one of two things Sort any measure into a column before you write about it CUT THE SOURCES BOOST THE SINKS renewables instead of fossil fuels energy efficiency in buildings less tillage, protect wetlands carbon capture at power plants reforestation of cleared land sustainable forest management no-till farming, cover crops healthier soils and oceans Two ways to fix the same imbalance Most real strategies do a bit of both at the same time
Some measures sit in both columns. Protecting wetlands stops carbon being released and keeps a sink working, which is why it comes up so often.

Reducing the sources

Low-carbon technologies

Energy production, transport, industry and heating are the big emitters. Switching them to solar, wind and hydropower cuts emissions at the point where they are largest. Efficiency counts too — better insulation and heat pumps mean the same comfort for less fuel burned.

Burning fewer fossil fuels

This sounds like the same point, and it overlaps, but it is worth stating separately because it is the direct one: every tonne of coal, oil or gas left in the ground is carbon that stays in a long-term store.

Less soil disruption

Ploughing exposes soil organic matter to oxygen, so it decomposes and releases carbon dioxide. Crop rotation, cover cropping and reduced tillage keep that carbon where it is and cut erosion at the same time.

Notice how often the same practice appears in more than one topic. No-till farming turns up here, in soil systems, and in food production. Learning it properly once pays off three times.

Strengthening the sinks

Reforestation and reduced deforestation

Planting trees on cleared or degraded land sequesters carbon dioxide into biomass and soil. Preventing clearance in the first place is cheaper and faster, which is why international programmes such as UN-REDD focus on halting deforestation and promoting sustainable forest management.

Biomass and BECCS

Bioenergy crops absorb carbon dioxide as they grow, so burning them releases carbon that was recently taken from the air rather than fossil carbon. On its own that is roughly neutral. BECCS goes further: the carbon dioxide from burning the biomass is captured and stored underground, so the overall process removes carbon from the atmosphere.

Why BECCS gets attention. Most measures slow the rise. BECCS is one of the few that can produce a net removal — the crop takes carbon out of the air, and the carbon dioxide from burning it never gets back. The catch is that the crops need land that could be growing food or holding forest.

Artificial sequestration

Carbon capture and storage (CCS) traps carbon dioxide from industrial processes and power stations before it reaches the atmosphere, then transports it and injects it underground for long-term storage. It treats the emission at the chimney rather than avoiding it altogether.

Boosting ocean uptake

Two proposed methods both work by growing more phytoplankton, which photosynthesise and take up carbon dioxide:

Both are experimental, and both carry real risk of disrupting marine food webs, so treat them as proposals rather than solutions.

🧩 Structuring an “evaluate this strategy” answer

  1. Say what it does. Reduces a source, or strengthens a sink.
  2. Give the mechanism. How exactly does carbon stop entering, or start leaving, the atmosphere?
  3. Give one strength. Scale, cost, speed, or a co-benefit such as biodiversity.
  4. Give one limitation. Land needed, energy needed, cost, uncertainty, or unintended effects.
  5. Reach a judgement. Say clearly whether you think it is worth doing and why.
WORKED EXAMPLE

Explain how reforestation reduces atmospheric carbon dioxide, and give one limitation of relying on it.

Step 1: Name the mechanism Trees absorb carbon dioxide during photosynthesis Step 2: Say where the carbon ends up stored in woody biomass and in surrounding soils Step 3: Give the limitation Trees take decades to mature, and the carbon is released again if the forest burns or is cleared A real sink, but slow and not permanent
WORKED EXAMPLE

A power station switches from coal to biomass with carbon capture and storage. Explain why this can result in a net removal of carbon dioxide from the atmosphere.

Step 1: The growing stage bioenergy crops absorb CO2 as they photosynthesise Step 2: The burning stage Burning would normally return that carbon to the air Step 3: The capture stage the CO2 is captured and injected underground instead Carbon comes out of the air and does not go back – a net removal Only true if the crops are grown without causing deforestation

💡 Exam tip

⚠ Common mix-up

Up next: Where Carbon Is Stored (HL) — the lithosphere and biological stores in detail, including limestone and methane.

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