IB ESS HL Topic 2 — Ecology Paper 1 & 2 HL only ~12 min read

How Productivity Changes Through Succession

Here is the puzzle at the heart of this page. A young ecosystem captures very little energy, yet it piles on biomass fast. A mature rainforest captures enormous amounts of energy, yet its biomass barely grows at all. Once you see why, this whole topic falls into place.

📘 What you need to know

The equation everything hangs on NP = GP − R   •   units: kJ m−2 yr−1

Early stages: small harvest, big share kept

On bare rock or new sand there is not much photosynthesis going on, so gross productivity is low. Three reasons:

But look at what happens to the energy they do capture. There are almost no consumers, and the plants themselves are small with very little non-photosynthetic tissue to keep alive. Total respiration is tiny. So a large share of the captured energy is left over as net productivity and goes straight into new growth.

That is why a pioneer community, which produces very little in absolute terms, still gains biomass quickly compared with the amount it captures.

Mid stages: the peak

As soil forms, bigger plants can establish. More producers with more leaves means GP rises, and a mixture of plant heights and shapes catches light more efficiently.

Net productivity keeps rising too, but more slowly, and eventually it peaks. Two things pull it down:

Late stages: high production, almost no gain

At the climax, GP is at its highest — a mature forest is one of the most productive systems on Earth. But almost all of that energy is used up in respiration by the producers and by the huge community of consumers and decomposers living off them.

So NP drops towards zero. Biomass is no longer piling up; it is being recycled. A tree falls, decomposers break it down, the nutrients go back into the soil and a new tree grows in the gap. The total stays roughly constant.

Productivity across 200 years of succession watch the gap between the top two lines energy per unit area per year GP respiration NP NP falls towards zero 0 50 100 150 200 time (years) Gross productivity levels off; respiration keeps climbing to meet it. Net productivity is the gap between those two lines, and the gap closes.
The blue line is not a separate measurement. It is simply the distance between the green and red lines, which is why it can rise while both of the others are still rising.

The same idea as a share of the energy

Where the captured energy ends up each bar is the whole of GP for that stage Pioneer stage Climax stage NP: 60% R: 40% R: 95% NP: 5% most energy goes into growth almost all energy is respired The pioneer bar is far smaller in reality; here both are drawn as 100%. This shows the share kept, which is the thing that changes most dramatically.
Low GP with a big share kept beats high GP with almost nothing left over — if what you care about is how fast biomass accumulates.

Pioneer against climax, side by side

Measure Pioneer community Climax community
Gross productivity (GP) Low High
Total respiration (R) Very low Very high
Net productivity (NP) Low in absolute terms, but rising fast Close to zero
NP as a share of GP High Low
GP to R ratio Well above 1 About 1
Biomass Low, but increasing quickly High and roughly constant
Energy flow Simple and linear Complex and cyclic
Nutrient cycling Leaky, relies on outside inputs Tight, nutrients recycled internally
If you only remember one sentence from this page, make it this: gross productivity rises all the way through succession, but net productivity rises and then falls. The two behave completely differently, and mixing them up is the single most expensive mistake in this topic.

Worked examples

WORKED EXAMPLE 1

In a young woodland, producers capture 12 000 kJ m−2 yr−1 and respire 4 200 kJ m−2 yr−1. Calculate NP and NP as a percentage of GP.

Step 1: use the equation NP = GP − R = 12 000 − 4 200 NP = 7 800 kJ m−2 yr−1 Step 2: turn it into a percentage 7 800 / 12 000 × 100 = 65% NP is 65% of GP Keep the units on the final answer. Dropping them loses a mark on data questions.
WORKED EXAMPLE 2

A mature forest nearby has GP = 45 000 and R = 44 100 kJ m−2 yr−1. Calculate NP as a percentage of GP and explain what this tells you about the forest.

Step 1: find NP NP = 45 000 − 44 100 = 900 kJ m−2 yr−1 Step 2: as a percentage 900 / 45 000 × 100 = 2% NP is 2% of GP Step 3: what it means Almost all the energy captured is used in respiration, so hardly any biomass is added each year. The forest is at or near its climax and is in a steady state. Notice GP here is nearly four times the young woodland, yet NP is far lower. That is the whole point of this topic.
WORKED EXAMPLE 3

Explain why total biomass stops increasing in a climax community even though gross productivity is high. (3 marks)

Mark 1: what respiration is doing The community now contains many producers, consumers and decomposers, so total respiration is very high. Mark 2: the consequence for NP Energy is being used up almost as fast as it is captured, so NP is close to zero. Mark 3: what that means for biomass With no surplus energy, new growth only replaces what dies, so biomass cycles between organisms instead of accumulating. Production and respiration are balanced, so biomass stays constant

💡 Exam tip

⚠ Common mix-up

Up next: r and K Reproductive Strategies — why the species that thrive in pioneer communities breed in a completely different way from the ones that dominate at the climax.

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