5TH GRADE SCIENCE • ECOSYSTEMS

The Cycle of Matter in Ecosystems

Why do fallen leaves disappear from the forest floor, yet forests keep growing year after year?

The Phenomenon: The Disappearing Log

🔍 ANCHORING PHENOMENON

Here's what's puzzling: the matter — all the wood, bark, and leaves that made up that tree — didn't just vanish into thin air. The tree weighed hundreds of pounds. Where did all that material go? And here's an even bigger mystery: the new plants growing in that same spot are building their stems, leaves, and roots out of something. Where are they getting the matter they need to grow?

Illustration showing a fresh fallen log on the left, a decomposing log in the middle, and new plants growing from rich soil on the right.
💭 THINKING QUESTIONS
  • Where did all the matter that made up the fallen tree go as it decomposed?
  • How do the new plants growing in the same spot get the matter they need to build their stems and leaves?
  • If matter can't be created or destroyed, how does it move between living things and the environment around them?

What Scientists Know: Matter Moves in Cycles

To explain what happened to the disappearing log, we need to understand a powerful idea in science: matter cycles between living organisms and the nonliving environment. Matter isn't used up — it moves from place to place, changing form along the way. The atoms that make up a tree today might have been part of the air, the soil, or even another living thing in the past.

1

Plants Take In Matter to Grow

Plants absorb water from the soil through their roots and take in carbon dioxide (CO₂) gas from the air through tiny holes in their leaves. During photosynthesis, plants use energy from sunlight to rearrange these molecules into sugars and other organic materials that become the plant's stems, leaves, and roots. Plants also release oxygen into the air as a byproduct.
2

Animals Get Matter by Eating

Animals cannot make their own food. Instead, they get the matter they need by eating plants or by eating other animals that ate plants. When you eat an apple, the matter in that apple — carbon, hydrogen, oxygen, and other elements — gets broken down and rebuilt into your own body: muscles, bones, blood, and more. This is how matter moves from one organism to another in a food chain.
3

Decomposers Break Matter Down

When organisms die, decomposers like bacteria, fungi (mushrooms and mold), and some insects break down the dead material. They consume the organic matter and release carbon dioxide back into the air and nutrients back into the soil. This is exactly what happened to the disappearing log — decomposers broke it apart molecule by molecule.
4

Matter Is Conserved — It Cycles

The total amount of matter doesn't change. It is conserved. The carbon atoms in the CO₂ that a tree absorbs might become part of a leaf, then get eaten by a deer, then get breathed out as CO₂ again. This constant movement of matter between organisms and the environment is called the cycling of matter. The same atoms are used over and over again.
KEY TAKEAWAY
KEY TAKEAWAY

Let's Investigate: Tracking Matter Through a Terrarium

🔬 INVESTIGATION SPOTLIGHT

The Investigation: Imagine your class builds a sealed terrarium using a large glass jar with a tight lid. Inside, you place moist soil, a small plant, a few dead leaves, and some tiny pill bugs (decomposers). You seal the jar shut so nothing can get in or out. Then you observe it for four weeks.

Materials: Large glass jar with lid, potting soil, small fern or moss, dried leaves, 4–5 pill bugs, spray bottle with water, ruler, observation journal.

Key question: If no new matter can enter or leave the sealed jar, how do the organisms inside continue to survive and grow?

What students would observe:

  • The plant continues to grow, producing new leaves
  • Water droplets form on the inside of the glass (water cycle!)
  • The dead leaves slowly shrink and crumble as pill bugs eat them
  • The soil stays moist and dark
  • After several weeks, the dead leaves are mostly gone, but the plant has grown larger

How Matter Cycles in a Sealed Terrarium

This investigation models the Science and Engineering Practice of developing and using models. The sealed terrarium is a model of how matter cycles in a real ecosystem. By observing what happens when no matter can enter or leave, students can gather evidence that matter is being recycled — not created or destroyed — within the system.

What We Discovered: Tracing Matter Step by Step

The terrarium investigation reveals something remarkable. Even though the jar was sealed — no new matter could get in — the plant kept growing, the pill bugs stayed alive, and the dead leaves slowly disappeared. How is this possible? Because matter was cycling inside the system.

Let's trace the path of a single carbon atom to see how this works. Imagine a carbon atom that starts in a molecule of carbon dioxide (CO₂) floating in the air inside the jar. During photosynthesis, the plant absorbs that CO₂ through its leaves and uses energy from sunlight to combine the carbon with hydrogen and oxygen from water. The result is a sugar molecule — and our carbon atom is now part of the plant's leaf.

Eventually, that leaf dies and falls to the soil. A pill bug eats the dead leaf. Inside the pill bug's body, the sugar is broken down through a process called cellular respiration — the pill bug combines the sugar with oxygen to release energy for moving, growing, and living. This process produces CO₂ and water as waste products. Our carbon atom is now back in the air as part of a CO₂ molecule — right where it started! Bacteria in the soil do the same thing with bits of leaf matter the pill bugs don't eat.

This is the key insight: the same matter keeps moving in a loop. Carbon dioxide from the air becomes part of a plant, the plant matter gets eaten or decomposes, and the carbon returns to the air as CO₂ or to the soil as nutrients. Water follows a similar cycle — absorbed by roots, released by leaves, condensing on the jar, and dripping back to the soil.

Terrarium Observation Data (Sample Results)

WeekPlant Height (cm)Dead Leaves RemainingWater Droplets on GlassObservations
05.2 cm4 whole leavesFewEverything looks fresh
15.5 cm3.5 leavesModeratePill bugs nibbling leaves; edges brown
26.0 cm2 leavesManyNew plant shoot; mold visible on leaves
36.4 cm1 leafManySoil darker; leaf pieces very small
46.9 cmFragments onlyManyPlant visibly taller; dead leaves mostly gone

The data shows a clear pattern: as the dead leaves decreased, the plant increased in size. The total amount of matter inside the sealed jar stayed the same, but it moved from one form (dead leaves) to another (plant growth, CO₂ in air, nutrients in soil). This is evidence that matter is conserved — it isn't created or destroyed, it just changes form and location.

The Cycling of Matter in a Forest Ecosystem

Patterns and Connections: Energy and Matter

The cycling of matter in ecosystems is an example of one of the most important patterns in all of science: matter is conserved within a system — it is transferred in and out of organisms, but it never disappears. Scientists call this a Crosscutting Concept because the same pattern shows up in many different areas of science, not just ecosystems.

Let's look at how the idea of Energy and Matter: Flows, Cycles, and Conservation appears across different science topics:

Science AreaHow Matter CyclesWhat Stays the Same
🌿 EcosystemsCarbon moves from air → plants → animals → decomposers → airTotal matter in the ecosystem is conserved
💧 Water CycleWater evaporates from oceans → forms clouds → rains → flows back to oceansTotal water on Earth stays the same
🪨 Rock CycleRocks break down into sediment → compressed into new rock → melted → cooled into rock againTotal rock/mineral matter is conserved
🧪 Chemical ReactionsWhen wood burns, matter changes from solid wood + oxygen gas → ash + CO₂ gas + water vaporTotal weight before = total weight after

Do you see the pattern? In every case, matter doesn't appear out of nowhere and doesn't vanish. It changes form — solid to gas, living to nonliving, one compound to another — but the total amount stays the same. Scientists can actually measure this: if you weigh all the matter before and after a change, the weight is the same. This is the law of conservation of matter, and it's one of the most fundamental principles in science.

This pattern also helps us understand our anchoring phenomenon. The fallen log didn't "disappear" — its matter was transformed. Some became CO₂ gas in the air. Some became nutrients dissolved in the soil. And some of that matter was taken up by the new plants growing nearby. The log's matter is still in the ecosystem, just in different forms and different places.

KEY TAKEAWAY
KEY TAKEAWAY

Real-World Connections: Matter Cycling and Us

Understanding how matter cycles isn't just an abstract science idea — it directly affects our lives and the decisions we make about the environment. Here are some real-world examples of how people use this knowledge:

1

🌱 Composting

When you compost food scraps and yard waste, you're speeding up the natural cycling of matter. Decomposers break down banana peels, apple cores, and dead leaves into nutrient-rich soil. Gardeners then use that compost to help new plants grow. You're essentially doing what the forest floor does naturally — recycling matter from dead organisms back into a form that living organisms can use.
2

🌊 Water Treatment

Cities clean and recycle water using the same principles as the water cycle. Water that goes down your drain is filtered and treated (much like soil filters water in nature) and eventually returned to rivers or underground sources where it can be used again. Understanding that water cycles — and that the same water molecules get used over and over — helps engineers design systems that keep our water clean.
3

🌍 Climate and Carbon

Scientists who study climate change are studying matter cycling on a global scale. When humans burn fossil fuels (which are made of ancient plant and animal matter), we release carbon that had been stored underground for millions of years back into the atmosphere as CO₂. This disrupts the natural balance of the carbon cycle and causes the atmosphere to trap more heat.
4

🏗️ Engineering Challenge

Can you design a better terrarium? Engineers use their understanding of matter cycling to design closed-loop systems — like space stations, where astronauts must recycle air, water, and even waste. Think about: What organisms would you include in a terrarium to make sure matter cycles efficiently? How many plants vs. decomposers? Could you design one that lasts a full year?

Key Vocabulary Review

  • Matter — Anything that has weight and takes up space. All living and nonliving things are made of matter, including air, water, soil, plants, and animals.
  • Photosynthesis — The process plants use to take in carbon dioxide from the air and water from the soil and, using energy from sunlight, turn them into sugars and oxygen. This is how plants build new matter for growth.
  • Decomposer — An organism (like bacteria, fungi, or certain insects) that breaks down dead plants and animals into simpler substances, returning nutrients to the soil and carbon dioxide to the air.
  • Conservation of Matter — The scientific principle that matter cannot be created or destroyed. In any process, the total amount of matter stays the same — it just changes form or moves to a different place.
  • Cycling of Matter — The continuous movement of matter (like carbon and water) through living organisms and the nonliving environment. The same atoms get used again and again.
  • Carbon Dioxide (CO₂) — A gas in the air made of one carbon atom bonded to two oxygen atoms. Plants take it in for photosynthesis; animals and decomposers release it during respiration.
  • Cellular Respiration — The process by which living organisms break down sugars using oxygen to release energy. It produces carbon dioxide and water as waste products. This is how matter gets returned to the environment from living things.
  • Nutrients — Substances in soil (like nitrogen, phosphorus, and potassium) that plants absorb through their roots and use to grow. Decomposers help release these nutrients from dead organisms back into the soil.

Practice: Test Your Understanding

1
A tiny seed grows into a massive oak tree over many years. Where does most of the tree's new mass come from?
2
Aquatic plants in a pond release oxygen into the water as a product of photosynthesis. Fish living in the pond absorb this dissolved oxygen from the water through their gills. What happens to the oxygen atoms after the fish use them?
3
A farmer rakes fallen leaves into a large pile in the yard. Each month, the farmer weighs the pile and finds that it gets lighter and smaller over time, even though nothing is carried away. What is the best explanation for why the leaf pile is losing mass?
4
A student places a small plant in a sealed clear jar with some soil and water. The jar is placed in sunlight. After several weeks, the plant is still alive and has grown slightly. The student says, "Nothing can get in or out of the jar, so the plant must be creating new matter to grow." What is wrong with the student's reasoning?
5
In a forest ecosystem, deer eat grass and other plants. Mountain lions hunt and eat the deer. Which statement best describes how matter moves through this food chain?

What's Next?

🔮 WHAT'S NEXT?
Varsity Tutors • 5th Grade Science (NGSS) • The Cycle of Matter in Ecosystems