Log in Sign up
Back to Discover
🧬

Phytoplankton

life science Maturity 9-11

Tiny plants float in the sea.

Plankton satellite image.jpg
Plankton satellite image.jpg
They live where the sun shines. They make the air we breathe. They are food for fish. We need them to live. Do you like the ocean?
Luminescent beaches in Chabahar3.jpg
Luminescent beaches in Chabahar3.jpg

40 words

Tiny plants float in the sea.

Plankton satellite image.jpg
Plankton satellite image.jpg
Their name means "plant drifter." They live where the sun shines. Sunlight helps them make food.
Global phytoplankton distribution - NASA.webm
Global phytoplankton distribution - NASA.webm
They also make the air we breathe. These tiny things are food for fish. They are very important to the ocean. Many kinds live in the water. Some are too small to see.
Luminescent beaches in Chabahar3.jpg
Luminescent beaches in Chabahar3.jpg
They can even make the water glow!

74 words

Phytoplankton are tiny drifters in the water. Their name means "plant drifter."

Plankton satellite image.jpg
Plankton satellite image.jpg
They live in the sunlit top layer of oceans and lakes. This area is called the euphotic zone.
Global phytoplankton distribution - NASA.webm
Global phytoplankton distribution - NASA.webm

Phytoplankton make their own food. They use a way called photosynthesis. They take in carbon dioxide from the water. Then, they let out oxygen. This helps us breathe! In fact, they make at least half of the Earth's oxygen.

Role of phytoplankton on various compartments of the marine environment.png
Role of phytoplankton on various compartments of the marine environment.png

These drifters are the base of the food web. Small animals eat them, and then fish eat those animals. Some phytoplankton are very small. You cannot see them without help. Other kinds can make the water look colorful. Some even make the waves glow at night!

Luminescent beaches in Chabahar3.jpg
Luminescent beaches in Chabahar3.jpg

There are many different types. Some are bacteria called cyanobacteria. Others are tiny life forms called diatoms. They need nutrients to grow. These include things like nitrogen and iron. If the water changes, the phytoplankton change too. This helps scientists study the health of our seas.

183 words

Phytoplankton are tiny living things that drift in oceans and lakes. Their name comes from Ancient Greek words meaning "plant drifter."

Plankton satellite image.jpg
Plankton satellite image.jpg
Even though they are very small, they are incredibly important to our planet. They make up only about 1% of the world's plant biomass. However, they are responsible for about half of all photosynthesis on Earth. They also produce at least half of the oxygen we breathe. Because they are so sensitive to change, scientists use them to check the health of coastal waters.
Role of phytoplankton on various compartments of the marine environment.png
Role of phytoplankton on various compartments of the marine environment.png

These drifters work through a way of life called photosynthesis. They live in the sunlit top layer of the water, called the euphotic zone.

Global phytoplankton distribution - NASA.webm
Global phytoplankton distribution - NASA.webm
To grow, they take in carbon dioxide that is dissolved in the water. They use sunlight to turn this into organic compounds for energy. During this process, they release oxygen back into the water and air. They also need nutrients to stay healthy. These include large amounts of nitrate and phosphate, as well as tiny amounts of metals like iron and zinc.
Environmental factors that affect phytoplankton productivity.webp
Environmental factors that affect phytoplankton productivity.webp

Scientists have studied these drifters for a long time to understand the ocean. In the early twentieth century, a scientist named Alfred C. Redfield made a big discovery. He noticed that the elements inside phytoplankton matched the nutrients found in deep ocean water. He found a specific ratio of carbon, nitrogen, and phosphorus. This is now called the Redfield ratio. It is a fundamental rule that helps us understand how marine life and chemistry work together.

Global phytoplankton species richness and turnover.jpg
Global phytoplankton species richness and turnover.jpg

There are about 5,000 known species of marine phytoplankton. They are very diverse and include different groups like cyanobacteria and diatoms. Some are tiny bacteria, while others are single-celled protists. Some types, like coccolithophores, even have shells made of calcium carbonate.

Plankton satellite image.jpg
Plankton satellite image.jpg
When there are enough of them, they can change the color of the water surface. Some species even cause the water to glow at night. This is called bioluminescence, and it happens when waves crash on a beach.
Luminescent beaches in Chabahar3.jpg
Luminescent beaches in Chabahar3.jpg

Phytoplankton act as the very base of the aquatic food web. They provide energy for tiny animals called zooplankton. These small creatures are then eaten by fish larvae and larger animals. For example, phytoplankton sustain tiny shrimp-like animals called krill. These krill then provide food for huge baleen whales.

Role of phytoplankton on various compartments of the marine environment.png
Role of phytoplankton on various compartments of the marine environment.png
By turning sunlight into food, these tiny drifters support almost all life in the sea.

437 words

Phytoplankton are the autotrophic components of the plankton community. The term "autotrophic" means they are self-feeding organisms. Their name comes from the Ancient Greek words "phutón," meaning plant, and "planktós," meaning drifter or wanderer.

Plankton satellite image.jpg
Plankton satellite image.jpg
These microscopic organisms are essential to both ocean and freshwater ecosystems. They act as the primary producers at the base of aquatic food webs. Even though they represent only about 1% of global plant biomass, they are incredibly powerful. They account for roughly half of all global photosynthetic activity. They also produce at least half of the Earth's oxygen.
Role of phytoplankton on various compartments of the marine environment.png
Role of phytoplankton on various compartments of the marine environment.png

To survive, phytoplankton rely on a process called photosynthesis. They use sunlight to convert carbon dioxide, which is dissolved in the water, into organic compounds. Because they require light, they live in the well-lit surface layers of water known as the euphotic zone.

Global phytoplankton distribution - NASA.webm
Global phytoplankton distribution - NASA.webm
During this process, they assimilate carbon and release oxygen as a byproduct. However, they must balance their light intake carefully. If solar radiation becomes too high, they may suffer from photodegradation. Different species use various photosynthetic pigments to absorb different wavelengths of light. This allows different communities to thrive depending on the spectral composition of the water.

Growth requires more than just light; phytoplankton also need specific nutrients. They depend on macronutrients, which are required in large quantities. These include nitrate, phosphate, and silicic acid. They also require micronutrients, which are trace metals needed in much smaller amounts. These metals include iron, manganese, zinc, cobalt, cadmium, and copper.

Environmental factors that affect phytoplankton productivity.webp
Environmental factors that affect phytoplankton productivity.webp
The availability of these nutrients is often controlled by the balance between upwelling and the biological pump. In some regions, like the Southern Ocean, a lack of iron can limit how much phytoplankton can grow. This has led to controversial experiments involving iron fertilization to try and remove carbon dioxide from the atmosphere.

Phytoplankton are a highly diverse group of organisms. They include photosynthesizing bacteria known as cyanobacteria, such as Prochlorococcus and Synechococcus. They also include various unicellular protists, like the diatoms.

Global phytoplankton species richness and turnover.jpg
Global phytoplankton species richness and turnover.jpg
Some groups, such as coccolithophores, are even more specialized. Coccolithophores have shells made of calcium carbonate called a coccosphere. These shells are sensitive to ocean acidification. Scientists have also identified "mixoplankton." These are organisms like certain dinoflagellates that are not just phototrophic, meaning they use light, but can also eat other organisms. This distinction changes how we understand the functioning of the food web.

In the early twentieth century, scientist Alfred C. Redfield made a major discovery regarding these organisms. He noticed a similarity between the elemental composition of phytoplankton and the nutrients in the deep ocean. He proposed that the ratio of carbon, nitrogen, and phosphorus in the ocean is controlled by phytoplankton requirements. This specific ratio is known as the Redfield ratio, which is 106:16:1.

Global phytoplankton species richness and turnover.jpg
Global phytoplankton species richness and turnover.jpg
This ratio is a fundamental principle for understanding marine ecology and biogeochemistry. It helps scientists track how nutrients move through the entire ocean system.

Phytoplankton play a vital role in the global carbon cycle. They perform primary production by fixing carbon into organic matter. This process supports a vast chain of life. For example, phytoplankton sustain krill, which are tiny crustaceans. These krill then serve as the primary food source for massive baleen whales.

Role of phytoplankton on various compartments of the marine environment.png
Role of phytoplankton on various compartments of the marine environment.png
When phytoplankton die, they can sink to the seafloor. This process eventually fertilizes the ocean floor with organic matter and detritus. This movement of matter is a key part of how the ocean functions.

Because they respond so quickly to environmental changes, phytoplankton are excellent indicators of ecosystem health. They have much faster turnover rates than land plants, which live for decades. Phytoplankton can respond to climate variations on a global scale in just days.

Global phytoplankton species richness and turnover.jpg
Global phytoplankton species richness and turnover.jpg
Changes in temperature, ocean acidification, and nutrient supply can all alter their populations. Scientists use satellite ocean color observations to monitor these changes from space. By watching the color of the water, researchers can track the health and distribution of these tiny but mighty drifters across the entire planet.

703 words
🖼️ Images & Media (7)
Global phytoplankton distribution - NASA.webm
File:Luminescent beaches in Chabahar3.jpg
Luminescent beaches in Chabahar3.jpg
File:Plankton satellite image.jpg
Plankton satellite image.jpg
File:Global phytoplankton species richness and turnover.jpg
Global phytoplankton species richness and...
Environmental factors that affect...
File:Role of phytoplankton on various compartments of the marine environment.png
Role of phytoplankton on various...
File:PhytoplanktonSRvsTemp.png
PhytoplanktonSRvsTemp.png
Up Next
🧬
Zooplankton
Life Science
More to explore

🔬 Go deeper

More advanced topics to explore

🪜 Step back

Simpler topics to build understanding

What is Nepedia?

A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.