Mars is a red planet. 
Mars is a red planet. 
Long ago, Mars had liquid water. This water may have made the planet good for tiny life. 
Today, the planet is very cold. It also has harsh light from space. This makes it hard for life to live on top.
We send robots to search the ground. These robots look for signs of old life. 
Some robots even find tiny bits of food in the rocks. We are still learning about this far world.
Is there life on Mars? 
Scientists do not have a final answer yet. They have not found proof of life. But they know much about the planet's past. Long ago, Mars was very different. It had liquid water on its surface. This means it might have been a good place for tiny life. 
Mars used to have a magnetic field. This field acted like a shield. It protected the air from the sun. Without this shield, the air was lost. The planet became very cold. Much of the water turned into ice. This ice is now under the ground. 
Today, the surface is a hard place to live. It has harsh radiation from space. The soil also has salts that are toxic to life. Because of this, scientists look deep underground. We send robotic rovers to help. 
These robots look for chemical biosignatures. These are signs left behind by life. They also look for organic compounds. These are the tiny building blocks of life. Some rovers even found methane gas. This gas could come from tiny life or from rocks.
Scientists are very curious about whether life has ever existed on Mars. 

To understand Mars, we must look at how its environment changed over time. Long ago, during the Noachian period, Mars had liquid water on its surface. This water flowed in rivers and sat in lakes. A magnetic field once acted like a shield to protect the atmosphere. When that field was lost, the solar wind stripped the air away. This caused the planet to become much colder. Much of the water then turned into ice or moved underground. 
People have been looking at Mars for a very long time. In the mid-17th century, people first noticed the ice caps at the poles. Later, William Herschel proved that these caps grow and shrink with the seasons. In 1854, William Whewell suggested that Mars might have seas and land. Later, Percival Lowell wrote books about Martian canals in 1895 and 1906. He thought a civilization built them, but these were actually optical illusions. By 1909, better telescopes proved that these canals did not exist. 
Today, we use advanced robotic rovers to search for real clues. The Curiosity rover found that Gale Crater once held a freshwater lake. It also found organic compounds, which are the building blocks of life. 

Searching for life on Mars is like being a detective. We look for chemical biosignatures, which are signs left behind by living things. We also look for things like boron or specific minerals in the soil. Because the surface is harsh with radiation, we look for life in the subsurface. We want to find places where tiny microbes could have lived in the past. By studying these clues, we hope to solve the mystery of our cosmic neighbors. 
Astrobiologists study Mars to understand if life can exist beyond Earth. 
Understanding the history of Martian habitability requires looking at its changing environment. During the ancient Noachian period, Mars had a much different climate. The surface environment once held liquid water. This water flowed through river networks and settled in lakes. A magnetic field once protected the atmosphere from the solar wind. This shield allowed the atmosphere to remain dense enough for liquid water to exist. When the magnetic field was lost, the solar wind stripped the atmosphere away. This loss caused temperatures to drop significantly. Much of the liquid water either sublimed into gas or became trapped in permafrost. Permafrost is a layer of ice found beneath the soil. 
Scientists use specific factors to predict if a location is habitable. They look for water availability and suitable temperatures. They also search for nutrients and an energy source for metabolism. Protection from ionizing radiation is another critical requirement. Currently, the Martian surface is bathed in intense radiation. The soil also contains perchlorates, which are chemicals toxic to many microorganisms. Because of these harsh surface conditions, scientists believe life might be best preserved in the subsurface. This means looking beneath the top layer of soil. If life ever existed, it likely lived as tiny microbes in fluids or sediments. 
Human interest in Mars has evolved through centuries of observation. In the mid-17th century, observers first noticed the polar ice caps. In the late 18th century, William Herschel proved these caps grow and shrink with the seasons. By the mid-19th century, astronomers noted that Mars has a day length similar to Earth. They also found the axial tilt is similar, which creates seasons. In 1854, William Whewell theorized that Mars had seas and land. In the late 19th century, speculation grew due to observations of Martian canals. Percival Lowell published books claiming these canals were built by a civilization. However, these canals were actually optical illusions. By 1909, better telescopes and observations by Eugène Antoniadi proved they did not exist. 
Modern exploration relies on sophisticated robotic rovers to find chemical clues. The Curiosity rover has provided vital data about the Gale Crater. It confirmed that this area once contained a freshwater lake. Curiosity also identified key ingredients for life, such as sulfur, nitrogen, and phosphorus. It even discovered organic compounds inside sedimentary rocks. Organic compounds are the essential building blocks for life. 

Recent missions continue to push the boundaries of our knowledge. The Perseverance rover is currently exploring the Jezero Crater. On September 10, 2025, NASA reported that Perseverance found a possible biosignature. A biosignature is a substance or feature that provides evidence of past life. This finding in the rock hints at ancient microbial activity. Perseverance is also collecting many drill samples. These samples may be transported to Earth laboratories in the late 2020s or 2030s. Other missions, like the ExoMars Trace Gas Orbiter, help map atmospheric gases. 
Mars also offers insights into how geological events affect life. A large impact from an asteroid can create a hydrothermal system. This is a system of hot, mineral-rich water. On Earth, such systems can last for millions of years. On Mars, a large crater could sustain such a system for 2 million years. This is long enough for microscopic life to potentially emerge. Scientists also study impactite, which is rock formed by an impact. These rocks may preserve ancient biosignatures if they were present during the impact. 
🖼️ Images & Media (15)
+ 3 more
More to explore
✨ What else?
Related topics you might enjoy
🔬 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.