By Eman Abdallah Kamel
In this article, you will learn about the composition of the Sun, its elements, and the different layers of the Sun, including the inner and outer layers.

The Sun
The Sun is a star. It is a huge, spherical body composed of hydrogen and helium. Its diameter reaches 1,400,000 kilometers. The Sun is 109 times the diameter of the Earth. But it is four times less dense than Earth due to its structure.
The Sun is one of about 100 billion stars in our galaxy, the Milky Way. The Sun is not a solid mass. Unlike rocky planets like Earth, its borders are not easily identifiable.
Did You Know?
The distance between Earth and the Sun is approximately 150 million kilometers (93 million miles). This distance is known as the astronomical unit (AU).
Our planet depends heavily on the Sun. It regulates the seasons, climate, weather, and ocean currents. It also enables photosynthesis, which supports plant life. Without the sun’s heat and light, life on Earth would not exist. God Almighty mentioned the sun thirty-five times in the Holy Qur’an. There is also a surah in the Holy Qur’an called Ash-Shams, “The Sun”.
Let’s explore the composition of this interesting star, without which life on Earth would be impossible.
Composition of the Sun
- The Sun consists mainly of hydrogen and helium. This composition was first demonstrated in 1925.
- Most elements in the Sun exist as atoms, with a small number present as molecules. All of these substances exist in the gaseous state.
Extreme Temperature:
- The Sun is extremely hot.
- Its high temperature prevents substances from remaining liquid or solid.
Ionisation:
- The extreme heat causes many atoms to lose one or more electrons. This process is called ‘ionisation’. As a result, the Sun contains many free electrons and positively charged ions.
- Scientists call this state hot ionised gas plasma.
According to an article written on pppl.gov, plasma is a distinct state of matter, alongside solids, liquids, and gases. Plasma is a state of matter, along with solids, liquids, and gases. When a neutral gas is heated to the point where some electrons are released from its atoms or molecules, it changes state and becomes plasma. Plasma consists of a partially ionised gas containing ions, electrons, and neutral atoms.
Abundance of Elements in the Sun
| Element | Percentage By Mass |
| Hydrogen | 73.4 |
| Helium | 25.0 |
| Carbon | 0.20 |
| Nitrogen | 0.09 |
| Oxygen | 0.80 |
| Neon | 0.16 |
| Magnesium | 0.06 |
| Silicon | 0.09 |
| Sulfur | 0.05 |
| Iron | 0.14 |

Layers of the Sun
The sun consists of:
1. The Inner Layers
The inner layer consists of the core, the radiative zone, and the convection zone.
- The Core: All of the energy in the sun comes from its core. The material that makes up the core is very dense because of the extremely high pressure and temperature (the core has temperatures higher than 15.7 million Kelvin, equivalent to 28 million degrees Fahrenheit or 15.7 million degrees Celsius). It is the combination of these two properties that creates an environment in which nuclear reactions can occur. These reactions always produce heavier elements on the periodic table.
Did You Know?
The core is the central zone where nuclear reactions consume hydrogen to form helium. These reactions liberate the energy that eventually leaves the surface as visible light.
- The Radiative Zone: It extends outward from the core’s outer edge to the convection region’s base. In this region, energy is transmitted as radiation through interactions with surrounding molecules. Some atoms can remain intact in the radiative zone because the temperature is slightly lower than in the core. These particles can absorb energy, store it briefly, and release it as new radiation.
There is a tachocline area between the radiative and convective zones. This region is the result of the sun’s differential rotation.
- The Convection Zone: The outer layer of the solar interior extends from a depth of about 200 thousand kilometers to the visible surface, where its movement appears in the form of grains and supergrains. In this region, the Sun’s temperature is not hot enough to transfer energy by thermal radiation (2 million degrees Kelvin). At this temperature, atoms will absorb energy more readily, but because their surroundings are dense and cold, they will not release it as readily. Therefore, the transfer of energy by radiation slows down considerably. Instead, it transfers heat by convection through thermal columns.
2. Outer Layers
The outer layer consists of the photosphere, the chromosphere, and the transition region.
- The Photosphere: We can directly observe the photosphere, the lowest layer of the Sun. It extends roughly 250 miles (400 km) above the solar disc’s center, where it meets the visible surface. The photosphere has a temperature range of 6,500 K at the bottom and 4,000 K at the top. Despite being the product of processes and disturbances in other solar layers, sunspots, solar flares, and solar prominences form in the photosphere.
Did You Know?
Sunspots are dark, cool areas on the Sun’s surface that can move, change, and disappear over time, but solar flares are explosions in the Sun’s atmosphere that release charged particles and a wave of energy into the solar system. According to an article published on NASA’s website, a solar prominence is a large, bright feature that extends from the Sun’s surface. These prominences are located on the Sun’s surface in the photosphere and extend into the Sun’s hot outer atmosphere, known as the corona. Scientists are still studying how solar prominences form and what causes them.
To learn more about sunspots and solar Flares, visit spaceplace.nasa.gov
- The Chromosphere: It is an irregularly shaped layer above the photosphere, where the temperature rises from 6000 degrees Celsius to about 20 thousand degrees Celsius. The chromosphere releases jets of burning gases called spicules. These fiery wisps of gas extend from the atmosphere like long, flaming fingers. They are usually about 500 kilometers (310 mi) in diameter. The spicules last only 15 minutes but can reach thousands of kilometers in height before they collapse and melt.
Did You Know?
The chromosphere is thicker than the photosphere and has a very low density; it’s impossible to observe it without narrowband filters or during a total solar eclipse due to the brightness of the photosphere behind it.
- Transition Region: It is the Sun’s outer atmosphere. It is the largest and least dense structure of the Sun. It is a thin, irregular layer of the Sun’s atmosphere that separates the hot corona from the cooler chromosphere. Heat flows from the corona into the chromosphere, creating the transition region where the temperature changes rapidly from one million degrees Celsius to about 20,000 degrees Celsius.
Did You Know?
The solar wind is the outflow of coronal gas that lies beyond the corona. The sun’s magnetic fields rise through the convection zone and erupt through the photosphere into the chromosphere and corona. The explosions give rise to solar activity, such as sunspots, flares, protrusions, and coronal mass ejections.
What is the meaning of a coronal mass ejection?
Coronal mass ejections (CMEs) are large ejections of plasma and magnetic fields from the Sun’s corona. CMEs from the Sun travel outward at speeds ranging from as slow as 250 kilometers per second (km/s) to nearly 3,000 km/s. The fastest coronal ejection reaches Earth in less than fifteen to eighteen hours. Slower CMEs can take many days to arrive. They expand as they spread away from the Sun, and larger coronal ejections can reach a size that encompasses nearly a quarter of the area between the Earth and the Sun by the time they reach Earth.
Sources
- Layers of the Sun
- The Sun Structure Booklet.pdf
- The Transition Region
- education.nationalgeographic.org/resource/sun/
- Structure and Composition of the Sun, PDF
- Coronal Mass Ejection
©Eman Abdallah Kamel, 2026
About the author: Eman is a writer and engineer. She is interested in searching for and writing about geography and astronomy. And many other topics.
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