Space is the big area far above us. It is mostly empty. It has stars and many planets. Space helps us see far away things. It is very big and cool. Do you want to see the stars?
Space is the big area far above our sky. It is mostly empty. There is very little air there. This helps us see far away stars. Most of space is just empty space. It has some dust and tiny bits of gas. Stars and planets live in it too. 
Outer space is the vast area beyond Earth's sky. It exists between stars, planets, and other celestial bodies. Space is mostly a vacuum. A vacuum is a place with very little matter. Most of space is nearly empty. It contains tiny bits of dust and gas. These gases are mostly hydrogen and helium. Because space is so empty, light can travel very far. This lets us see old galaxies from long ago.
Scientists use the Kármán line to mark the start of space. This line is 100 kilometers above sea level. Space is a hard place for humans to visit. It has radiation, which is energy that can be harmful. There is also microgravity. This means there is very little pull from gravity. Microgravity can cause humans to lose bone and muscle. 
Outer space is the vast expanse beyond Earth's atmosphere. It exists between all the celestial bodies in the universe. Space is almost a perfect vacuum. This means it has very low levels of particle density. It is mostly made of hydrogen and helium plasma. Most of the universe is made of this empty space. Even star systems and galaxies are mostly empty. Much of the rest of the universe is made of dark matter and dark energy. We do not yet know exactly what these are.
Space works as a place with almost no friction. This allows planets and moons to move freely in their orbits.
Humans have studied the nature of space for a long time. In the 17th century, scientists found that air pressure drops as you go higher. This helped them realize the space between Earth and the Moon must be a vacuum. 

There are many important facts about the boundary of space. Many people use the Kármán line to mark the start of space. This line is 100 kilometers above sea level. 
Exploring space is a very hard job for humans. The vacuum and radiation are dangerous. 

Outer space is the vast expanse existing beyond Earth's atmosphere and between all celestial bodies. It is characterized by ultra-low particle densities, making it a near-perfect vacuum. This vacuum is primarily composed of hydrogen and helium plasma. Space is also permeated by electromagnetic radiation, cosmic rays, neutrinos, and magnetic fields. While it seems empty, it contains various forms of energy and matter. Much of the mass-energy in the observable universe consists of unknown forms called dark matter and dark energy. 
The state of the universe began with the Big Bang approximately 13.8 billion years ago. During this era, the universe was in an extremely hot and dense state that expanded rapidly. About 380,000 years after this expansion began, the universe cooled enough for protons and electrons to combine. This event is known as the recombination epoch, which allowed for the formation of hydrogen. Once this occurred, matter and energy decoupled, allowing photons to travel freely through expanding space. Following this initial expansion, matter underwent gravitational collapse. This process created the stars, galaxies, and other astronomical objects we observe today. The remaining vast areas between these objects became the deep vacuum we call outer space.
Space can be categorized by its density and composition. Intergalactic space occupies most of the universe's volume. It is incredibly sparse, with a density of less than one hydrogen atom per cubic metre. In contrast, local concentrations of matter have condensed into stars and galaxies. Within these galaxies, density is much higher due to planets, stars, and black holes. There is also a distinction between baryonic matter and dark components. Baryonic matter refers to ordinary matter composed of atoms. This makes up only 4.6% of the total energy density of the universe. The rest is comprised of dark matter and dark energy, which influence the universe's expansion.
Human understanding of space has evolved through centuries of scientific discovery. In the 17th century, scientists realized that air pressure decreases with altitude. This led to the concept that the space between Earth and the Moon must be a vacuum. The term "outer space" was first applied in astronomy by Alexander von Humboldt in 1845. Later, the writings of H. G. Wells helped popularize the term after 1901. In the 20th century, scientists grasped the immense scale of the universe by measuring the distance to the Andromeda Galaxy. 
The boundary of space is not defined by a single altitude, but a convention exists. The Kármán line is an altitude of 100 kilometers above sea level. It is used in space treaties and for aerospace record-keeping to mark the start of outer space.
The environment of space presents extreme physical challenges. Because there is almost no friction, planets and moons move freely in their orbits. However, the vacuum and radiation pose significant risks to humans. 
Despite these hazards, life shows remarkable resilience in space. Certain species can withstand extreme conditions for various periods. For example, lichen carried on the ESA BIOPAN facility survived ten days in space in 2007. Some seeds, such as Arabidopsis thaliana, germinated after 1.5 years of exposure. Additionally, a strain of Bacillus subtilis survived for 559 days in low Earth orbit or simulated Martian environments. These findings help scientists understand how life might exist or travel through the cosmos. 
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