MIDDLE SCHOOL LIFE SCIENCE (NEXT GENERATION SCIENCE STANDARDS) • ECOSYSTEMS: INTERACTIONS, ENERGY, AND DYNAMICS

Use models to trace the movement of matter through living and nonliving components

Discover how atoms cycle endlessly between air, water, soil, and every living thing on Earth.

Why Do Scientists Study the Movement of Matter?

Have you ever wondered where a fallen leaf goes after it crumbles on the ground? The atoms inside that leaf don't just vanish. They move into the soil, the air, and eventually into new living things. For hundreds of years, scientists have asked this same question: Where does matter go, and where does it come from?

Understanding the movement of matter is a core idea in ecology. Ecology is the study of how living things interact with each other and their environment. Scientists build models (simplified pictures, diagrams, or equations) to trace where atoms travel. These models help us predict what happens when ecosystems change.

1770s
Lavoisier & Conservation of Mass
French chemist Antoine Lavoisier showed that matter is not created or destroyed in chemical reactions. This idea became the law of conservation of mass.
1840s
Justus von Liebig & Plant Nutrition
German scientist Liebig discovered that plants need specific nutrients from the soil. He showed that matter moves from soil into plants.
1920s
Alfred Lotka & Biogeochemical Cycles
Lotka described how chemical elements cycle through living organisms and the nonliving environment. He helped create the first ecosystem models.
1960s–Today
Modern Ecosystem Modeling
Scientists now use computer models to track carbon, nitrogen, and water through entire ecosystems. These models help predict climate change effects.

The big question scientists still explore is: How do the same atoms keep recycling between living and nonliving parts of an ecosystem? That is exactly what you will investigate in this lesson.

Core Principles of Matter Movement in Ecosystems

Before you can trace matter through an ecosystem, you need a few key ideas. These principles are the building blocks for every model you will create.

1

Conservation of Matter

Atoms are never created or destroyed. They just rearrange and move from one place to another. The total amount of matter stays the same.
2

Living vs. Nonliving Components

Biotic (living) components include plants, animals, fungi, and bacteria. Abiotic (nonliving) components include air, water, rocks, and soil.
3

Biogeochemical Cycles

Matter moves in loops called biogeochemical cycles. "Bio" means life, "geo" means Earth, and "chemical" refers to the substances involved.
4

Photosynthesis & Cellular Respiration

Plants pull carbon from CO₂ in the air to build sugars. Animals (and plants) break those sugars apart and release CO₂ back. This is a key pathway for carbon.
5

Decomposition Closes the Loop

Decomposers (bacteria and fungi) break down dead organisms. They return nutrients and carbon to the soil and air so the cycle can start again.
KEY TAKEAWAY
Think of matter in an ecosystem like players on a basketball court. The same five players rotate between offense and defense — nobody new comes in, and nobody leaves. In the same way, the same atoms keep cycling between living organisms and nonliving reservoirs like air, water, and soil. They just change roles.

Modeling the Carbon Cycle

The carbon cycle is one of the most important examples of matter moving through an ecosystem. Carbon atoms travel between the atmosphere, plants, animals, decomposers, soil, and even the ocean. The diagram below is a system model — it shows the parts (components) and arrows (matter flow) of the carbon cycle.

This system model traces carbon atoms through four main components. Green arrows show matter entering living things. Dashed cyan arrows show CO2 returning to the atmosphere through respiration. Pink arrows show dead matter flowing to decomposers, and orange arrows show matter entering the soil.

Notice how every arrow represents a process that moves matter. Photosynthesis pulls carbon from the air into plants. Respiration releases carbon back into the air. Consumption moves carbon from plants to animals. Decomposition breaks dead matter into simpler chemicals. No carbon is created or destroyed — it just moves!

🍂 Anchoring Phenomenon
Every autumn, trees in a forest drop thousands of kilograms of leaves. By spring, most of those leaves have disappeared. Where did all that matter go? Use the model above to trace the path of carbon atoms from a fallen leaf back into a new green leaf the following year.

How Photosynthesis and Respiration Move Matter

Two chemical reactions drive most of the carbon cycle. Understanding their chemical equations helps you trace exactly where atoms go.

Photosynthesis — Building Matter

PHOTOSYNTHESIS
6CO₂ + 6H₂O → C₆H₁₂O₆ + 6O₂
CO2 = carbon dioxide (from air) · H2O = water (from soil) · C6H12O6 = glucose (sugar stored in the plant) · O2 = oxygen (released into the air). Light energy from the Sun powers this reaction.

Count the atoms on each side. There are 6 carbon atoms on the left (in 6CO2) and 6 carbon atoms on the right (in C6H12O6). No atoms are lost — they just rearranged into a new molecule. The carbon moved from the nonliving air into the living plant.

Cellular Respiration — Releasing Matter

CELLULAR RESPIRATION
C₆H₁₂O₆ + 6O₂ → 6CO₂ + 6H₂O
This is the reverse of photosynthesis. Living cells break apart glucose and release carbon dioxide and water. Energy is released for the organism to use.

Both plants and animals perform cellular respiration. When you breathe out, the CO2 in your breath contains carbon atoms that were once in the food you ate. That food may have started as a plant that pulled those atoms from the air. This is how matter cycles between living and nonliving components.

🔬 Science Practice Spotlight
When scientists count atoms on both sides of a chemical equation, they are using the crosscutting concept of Energy and Matter: matter is conserved because atoms are not created or destroyed in a chemical reaction. This also connects to the practice of Developing and Using Models — the equation itself is a model.

Other Key Cycles: Nitrogen and Water

Carbon is not the only element that cycles. Nitrogen and water also move between living and nonliving parts of ecosystems. Each cycle has its own set of processes and pathways.

Left: the water cycle shows H2O moving between the atmosphere, organisms, and bodies of water through evaporation, precipitation, transpiration, and runoff. Right: the nitrogen cycle shows N2 moving from the atmosphere into soil bacteria, then into plants and animals, and back to the atmosphere.
Summary of three major biogeochemical cycles
CycleKey MoleculeHow It Enters Living ThingsHow It Returns to Nonliving
CarbonCO₂, C₆H₁₂O₆Photosynthesis in plants; eating in animalsRespiration, decomposition, combustion
NitrogenN₂, NH₃, NO₃⁻Bacteria fix N₂ into usable forms; plants absorb from soilDecomposition, denitrification by bacteria
WaterH₂ORoots absorb water; animals drink waterTranspiration, exhalation, excretion, evaporation

In every cycle, matter moves in a loop. It enters living things through specific processes and returns to the nonliving environment through other processes. The crosscutting concept of Systems and System Models reminds us to identify the parts (components) and the interactions (arrows) when building any cycle model.

Worked Example: Tracing a Carbon Atom

Let's trace one carbon atom through an ecosystem, step by step. Imagine a carbon atom starts as part of a CO2 molecule in the atmosphere above a forest.

Path of a Carbon Atom from Air → Plant → Deer → Soil → Air
1
Step 1 — Identify the Starting ReservoirOur carbon atom is in a molecule of CO2 floating in the atmosphere. This is a nonliving (abiotic) component of the ecosystem.
Location: Atmosphere (abiotic)
2
Step 2 — Photosynthesis Moves Carbon into a PlantAn oak tree absorbs the CO2 through its leaves. During photosynthesis, the carbon atom becomes part of a glucose molecule (C6H12O6). The tree uses some glucose to build its leaves and bark.
Location: Oak tree leaf (biotic)
3
Step 3 — Consumption Moves Carbon to an AnimalA deer eats the oak leaf. During digestion, the carbon atom is broken away from the leaf's molecules and reassembled into the deer's muscle tissue.
Location: Deer muscle (biotic)
4
Step 4 — Decomposition Returns Carbon to the SoilWhen the deer eventually dies, decomposers (bacteria and fungi) break down its body. The carbon atom becomes part of organic matter in the soil.
Location: Soil organic matter (abiotic)
5
Step 5 — Respiration by Decomposers Returns Carbon to the AirAs bacteria break down the organic matter, they perform cellular respiration. The carbon atom is released as part of a new CO2 molecule back into the atmosphere. The cycle is complete!
Location: Atmosphere (abiotic) — back where it started!
🔄 PATTERN CHECK
Notice the pattern: the carbon atom switched between biotic and abiotic components multiple times. It started in the air (abiotic), moved into a tree (biotic), into a deer (biotic), into the soil (abiotic), and back to the air (abiotic). The total number of carbon atoms in the ecosystem never changed.

Strengths and Limitations of Ecosystem Models

Models are powerful tools, but they are not perfect copies of reality. When you build a model to trace matter, it is important to know what it does well and where it falls short.

Comparing the strengths and limitations of ecosystem models
Strengths of ModelsLimitations of Models
Simplify complex systems so they are easier to understandLeave out details — real ecosystems have thousands of species
Show the direction of matter flow with arrowsCannot show the exact amounts or speeds of matter transfer
Help scientists predict what happens when a part is changedPredictions may be wrong if the model is too simple
Can be shared and discussed to build scientific argumentsDifferent people may draw different models for the same system
KEY TAKEAWAY
A model is like a map of a city. A map shows you the streets and buildings, but it cannot show every person, car, and pigeon. The map is still very useful for finding your way around! In the same way, ecosystem models are useful for tracing matter even though they simplify the real world. Scientists keep improving models by adding more detail.

The science practice of Engaging in Argument from Evidence reminds us that models should be supported by data. If new evidence shows your model is missing a pathway, you should revise it.

Connecting to Bigger Ideas: Human Impacts and Climate

In more advanced courses, you will use matter-cycling models to study how humans change these natural cycles. Burning fossil fuels adds extra CO2 to the atmosphere faster than photosynthesis can remove it. Fertilizer runoff adds extra nitrogen to waterways. These are examples of the crosscutting concept of Stability and Change.

How this lesson connects to high school topics
What You Learn NowWhat Comes Next
Carbon cycles naturally between air, plants, animals, and soilHumans release stored carbon (fossil fuels) much faster than natural processes can absorb it
Simple box-and-arrow models trace matter through a few componentsComputer simulations model entire global cycles with thousands of variables
Conservation of matter: atoms rearrange but are not lostEnergy transformations accompany matter transfers (thermodynamics)
Decomposers return nutrients to soilNutrient pollution (eutrophication) disrupts aquatic ecosystems when excess nutrients enter water

By learning to trace matter now, you are building skills you will use throughout your science career. Every environmental issue — from climate change to water pollution — depends on understanding where matter goes and what processes move it.

Practice Problems

PROBLEM 1CONCEPTUAL
A tree absorbs carbon dioxide from the air and uses it to make sugar. Which process is responsible for this transfer of matter from a nonliving component to a living component? A) Cellular respiration B) Photosynthesis C) Decomposition D) Evaporation
PROBLEM 2BASIC
In the equation for photosynthesis (6CO₂ + 6H₂O → C₆H₁₂O₆ + 6O₂), how many total carbon atoms are on the reactant (left) side? A) 1 B) 6 C) 12 D) 18
PROBLEM 3INTERMEDIATE
A student draws a model showing: Atmosphere → Grass → Rabbit → Fox → Soil → Atmosphere. The student claims this model shows the carbon cycle in a meadow. What is missing from the model? A) An arrow from the fox back to the atmosphere (through respiration) B) An arrow from the atmosphere to the fox C) An arrow from the soil to the rabbit D) An arrow from the grass to the soil
PROBLEM 4APPLIED
A farmer notices that after clearing a forest and planting crops, the nearby lake becomes full of algae every summer. Using your knowledge of matter cycling, which explanation best accounts for this observation? A) Trees were absorbing all the sunlight, and now more sunlight reaches the lake B) Fertilizer washes nitrogen and phosphorus from farm soil into the lake, increasing nutrients that algae use to grow C) The crops release more oxygen, which makes the algae grow faster D) Without trees, water evaporates faster and concentrates the algae
PROBLEM 5CRITICAL THINKING
A scientist builds two models of the same pond ecosystem. Model A only shows carbon moving between the atmosphere, pond plants, fish, and decomposers. Model B adds arrows for carbon stored in pond sediment and carbon dissolved in the water. Which statement best explains why Model B is more useful for predicting what happens if the pond temperature increases? A) Model B has more arrows, so it is always better B) Model B includes additional reservoirs where carbon can be stored or released, so it captures more cause-and-effect relationships C) Model A is wrong because it does not show dissolved carbon D) Model B is more colorful and easier to read

Summary: Tracing Matter Through Ecosystems

In this lesson, you learned that matter is conserved — atoms are never created or destroyed. They cycle between biotic (living) and abiotic (nonliving) components of an ecosystem through processes like photosynthesis, cellular respiration, consumption, and decomposition. The carbon cycle, nitrogen cycle, and water cycle are three major biogeochemical cycles that move matter through ecosystems.

You practiced the science skill of Developing and Using Models to trace atoms from one component to another. You explored the crosscutting concepts of Energy and Matter (matter is conserved), Systems and System Models (identify components and interactions), and Cause and Effect (changing one part of the cycle affects others). Remember: models have strengths and limitations, and scientists revise them as new evidence appears.

Varsity Tutors • Middle School Life Science (Next Generation Science Standards) • Use models to trace the movement of matter through living and nonliving components