How Did We Discover That Plants Make Food?
Have you ever wondered why plants are green? Or why life on Earth depends on them? For centuries, people assumed plants got all their food from soil. It took many clever experiments to figure out the truth.
Scientists slowly discovered that plants use a process called photosynthesis (a word meaning "putting together with light"). This process turns simple substances into food. Let's look at the key moments in that discovery.
These experiments raised a big question. What exactly goes into a plant, and what comes out? That is the anchoring phenomenon for this lesson: a plant sitting in sunlight gains mass over time, even though nobody adds extra soil. Where does the new mass come from?
Core Principles of Photosynthesis
Photosynthesis is the process that plants, algae, and some bacteria use to make food. They capture light energy from the sun and use it to build sugar molecules. Let's break this process into its main ideas.
Inputs (Reactants)
Outputs (Products)
Energy Transformation
Where It Happens
A Visual Overview of Photosynthesis
A diagram can help you see how the inputs and outputs of photosynthesis connect. Study the image below. Notice how arrows show what goes in and what comes out of the leaf.
Look at the arrows closely. The blue arrows point inward — those are the inputs. The yellow arrows point outward — those are the outputs. The green oval represents a chloroplast, where all the action happens. This diagram is a system model. In science, we use models to show how matter and energy move through a system.
The Chemical Equation of Photosynthesis
Scientists write photosynthesis as a chemical equation (a shorthand way to show what goes in and what comes out). The equation uses chemical formulas instead of words. Don't worry — we will break it apart piece by piece.
Let's count the atoms. On the left side, we start with 6 carbon atoms, 18 oxygen atoms, and 12 hydrogen atoms. On the right side, we end with the same numbers. This shows the crosscutting concept of Energy and Matter — atoms are rearranged during the reaction, but none are created or destroyed.
Tracking Matter and Energy Through the System
Understanding where each atom goes is a powerful skill. It helps explain why a tiny seed can grow into a huge tree. Most of a plant's mass actually comes from carbon dioxide in the air, not from the soil. The carbon atoms in CO2 become part of the glucose molecule, which the plant uses to build leaves, stems, and roots.
Follow the carbon atoms (blue circles). They start in CO2 molecules from the air. After photosynthesis, those same carbon atoms end up inside the glucose molecule. This is how a plant builds its body using gas from the air!
Now follow the hydrogen atoms (yellow circles). They start in water molecules. After the reaction, they are also part of the glucose. The oxygen atoms (red circles) are split between glucose and the oxygen gas that the plant releases.
Worked Example: Identifying Inputs and Outputs
Imagine you are studying a bean plant growing on a windowsill. You need to explain where the plant gets what it needs for photosynthesis and what it produces. Let's work through it step by step.
Comparing Inputs and Outputs Side by Side
Let's organize everything we know into a clear table. This will help you quickly recall each substance and its role in photosynthesis.
| Substance | Chemical Formula | Input or Output? | Where It Comes From / Goes |
|---|---|---|---|
| Carbon dioxide | CO2 | Input | Enters through stomata (tiny pores) in leaves |
| Water | H2O | Input | Absorbed from soil by roots, travels up the stem |
| Sunlight | — (energy, not a chemical) | Input (energy) | Absorbed by chlorophyll in chloroplasts |
| Glucose | C6H12O6 | Output | Used by the plant for energy and building materials |
| Oxygen | O2 | Output | Released through stomata into the air |
Photosynthesis and Cellular Respiration: A Preview
You might wonder: what happens to all that glucose? Plants (and animals that eat plants) break it down through a process called cellular respiration. This is almost the reverse of photosynthesis. The table below compares the two processes.
| Feature | Photosynthesis | Cellular Respiration |
|---|---|---|
| Inputs | CO2 + H2O + sunlight | Glucose + O2 |
| Outputs | Glucose + O2 | CO2 + H2O + energy (ATP) |
| Energy Change | Light energy → chemical energy | Chemical energy → usable cell energy |
| Where It Happens | Chloroplasts (plant cells) | Mitochondria (all living cells) |
| Who Does It? | Plants, algae, some bacteria | All living organisms |
Notice the pattern! The outputs of photosynthesis become the inputs of cellular respiration, and vice versa. This is a beautiful example of the crosscutting concept of Systems and System Models. Matter and energy cycle between these two processes in a loop. In future lessons, you will explore cellular respiration in detail.
Practice Problems
Test your understanding with these five questions. They start easy and get more challenging. Read each question carefully and think about the inputs, outputs, and energy changes of photosynthesis.
Lesson Summary
Photosynthesis is the process by which plants, algae, and some bacteria convert light energy into chemical energy stored in glucose. The three inputs are sunlight, carbon dioxide (CO₂), and water (H₂O). The two outputs are glucose (C₆H₁₂O₆) and oxygen (O₂). The process happens inside chloroplasts, which contain the green pigment chlorophyll.
The chemical equation 6CO₂ + 6H₂O → C₆H₁₂O₆ + 6O₂ shows that atoms are rearranged but conserved — the same number of each type of atom appears on both sides. This connects to the NGSS crosscutting concepts of Energy and Matter and Systems and System Models. Most of a plant's mass comes from carbon dioxide in the air, not from soil. The outputs of photosynthesis are the inputs of cellular respiration, creating a cycle that supports all life on Earth.