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Hydrogen-alpha

physical science Maturity 11-13

Some tiny parts make red light.

Emission spectrum-H.svg
Emission spectrum-H.svg
This light is a deep red. It comes from gas in space. It also comes from the Sun. We can see it with tools. It helps us see far away. Can you see the red color?

52 words

Tiny parts in gas make red light.

Emission spectrum-H.svg
Emission spectrum-H.svg
This light is a deep red color. It happens when a small part falls down. It falls from one level to another. This makes the red light glow.
WHAM survey.png
WHAM survey.png
We can see this light in space. It shows us big clouds of gas. We can also see it on the Sun. It helps us see things far away. It is a very special kind of light.

84 words

Hydrogen-alpha is a deep-red color of light.

Emission spectrum-H.svg
Emission spectrum-H.svg
This light comes from a single part of a hydrogen atom. In an atom, electrons live in different energy levels. These levels are like steps on a ladder.
Bohr atom model.svg
Bohr atom model.svg
When an electron falls from the third step to the second step, it lets out light. This specific light is called H-alpha. It has a wavelength of 656.28 nanometers in the air.

Astronomers use this light to study space. It helps them find gas clouds called nebulae. They can also see it on the Sun. It shows parts of the Sun like solar prominences.

To see this light clearly, people use special tools. These are called H-alpha filters. They let only the red light through. This helps hide light pollution. Some filters are made of many thin layers. Other filters use a tool called an etalon. An etalon is a part that lets specific light pass. This helps scientists see fine details in the Sun's atmosphere.

NGC6888 Ha JeffJohnson.jpg
NGC6888 Ha JeffJohnson.jpg

177 words

Hydrogen-alpha is a special kind of deep-red light.

Emission spectrum-H.svg
Emission spectrum-H.svg
This light comes from a single hydrogen atom. It is part of what scientists call the Balmer series. This series is a group of light lines.
Bohr atom model.svg
Bohr atom model.svg
The light has a wavelength of 656.28 nanometers in air. In a vacuum, the wavelength is 656.46 nanometers. This red light helps us see things in space. It is a very important tool for astronomers.

To understand this light, we look at how atoms work. Electrons live in energy levels around a nucleus. These levels are like steps on a ladder. An electron can move between these steps. H-alpha happens when an electron falls down. It moves from the third level to the second level. This jump releases a photon of red light.

Bohr atom model.svg
Bohr atom model.svg
This specific jump is called the Balmer-alpha transition.

Sometimes, an atom loses its electron entirely. This is called ionization. When an electron and proton recombine, they form a new atom. The electron then falls through the different levels. This is called a cascade. About half the time, the electron makes the jump from level three to level two. This creates the H-alpha light we see.

WHAM survey.png
WHAM survey.png
Because of this, H-alpha shows where hydrogen is being ionized.

Astronomers use this red light to find things in the sky. It helps them trace gas clouds called nebulae.

NGC6888 Ha JeffJohnson.jpg
NGC6888 Ha JeffJohnson.jpg
They can also see H-alpha in the Sun's atmosphere. It shows features like solar prominences and the chromosphere. However, H-alpha cannot tell us the mass of a cloud. This is because the light saturates easily. To find mass, scientists look for molecules like carbon dioxide or ammonia instead.

Special tools called H-alpha filters help us see this light. Some filters use many thin layers to work. These are called dichroic filters. Other filters use a tool called an etalon. An etalon has a small air gap inside. For the Sun, scientists use a three-part system. They use red glass and an etalon and a blocking filter. This lets only a tiny range of light through. This helps show fine details on the Sun.

373 words

Hydrogen-alpha, often shortened to H-alpha or Hα, is a specific type of deep-red light.

Emission spectrum-H.svg
Emission spectrum-H.svg
It is a visible spectral line produced by a single hydrogen atom. This light is incredibly important for scientists who study the universe. By observing this specific wavelength, astronomers can locate where hydrogen gas is active in space. This helps them map out the structures of the cosmos.
WHAM survey.png
WHAM survey.png

To understand how this light is made, we must look at the Bohr model of the atom.

Bohr atom model.svg
Bohr atom model.svg
In this model, electrons exist in quantized energy levels around a nucleus. These levels are represented by principal quantum numbers, such as n = 1, 2, or 3. Electrons can only exist at these specific levels. They cannot exist in the spaces between them. They can only move by transitioning from one level to another.

H-alpha is the first line in a group called the Balmer series. This series consists of transitions where an electron falls from a higher level to the second-lowest level, which is n = 2. Specifically, H-alpha occurs when an electron drops from the third energy level (n = 3) to the second (n = 2). This movement releases a photon of light. The wavelength of this photon is 656.28 nm in air and 656.46 nm in a vacuum. Other transitions in the Balmer series include H-beta (n = 4 to n = 2) and H-gamma (n = 5 to n = 2).

There is a specific process in space that makes H-alpha very common. It often happens through a process called ionization. This occurs when an atom loses its electron entirely. It takes 13.6 eV to ionize a hydrogen atom. It takes only 12.1 eV to move an electron from n = 1 to n = 3. Because of this, ionization is much more likely to happen than simple excitation. When the electron and proton eventually recombine, they form a new atom. The electron then falls through various levels in a cascade toward the ground state (n = 1). About half the time, this cascade includes the n = 3 to n = 2 transition. This results in the emission of H-alpha light.

Astronomers use H-alpha to observe many different celestial objects. They use it to trace the ionized hydrogen content in emission nebulae.

NGC6888 Ha JeffJohnson.jpg
NGC6888 Ha JeffJohnson.jpg
They also use it to study features in the Sun's atmosphere. This includes observing the chromosphere and solar prominences. While H-alpha is great for seeing the shape of a cloud, it has limits. The light line saturates, or self-absorbs, very easily because hydrogen is so common in nebulae. Because of this saturation, H-alpha cannot accurately determine the mass of a cloud. To find the mass, scientists instead look for molecules like carbon dioxide, carbon monoxide, formaldehyde, ammonia, or acetonitrile.

To see this light clearly, scientists use special optical tools called H-alpha filters. Some are dichroic filters made of about 50 vacuum-deposited layers. These layers use interference to let only the H-alpha wavelength pass through. For studying the Sun, a more complex three-part system is used. It includes an energy rejection filter, which is usually red glass. It also uses a Fabry–Pérot etalon, which transmits wavelengths centered on the H-alpha line. Finally, a blocking filter stops any other wavelengths that passed through the etalon. This system allows a very narrow range of light, less than 0.1 nm, to pass.

These advanced filters are necessary because of the high velocities of solar features. Fast-moving prominences can cause a Doppler effect, which shifts the light. Scientists can tune solar H-alpha etalons by changing the temperature, air density, or tilting them to cope with this shift. Amateur astronomers often use filters with a bandwidth of 0.7Å (0.07 nm). By adding a second etalon, they can reduce this to 0.5Å. This helps them see much better contrast in the details on the Sun's disc. This specialized technology allows us to turn a tiny red signal into a detailed map of the stars.

673 words
🖼️ Images & Media (5)
File:Bohr atom model.svg
Bohr atom model.svg
File:Emission spectrum-H.svg
Emission spectrum-H.svg
File:Today's Ha Sun - Flickr - upsidedown astronomer.png
Today's Ha Sun - Flickr - upsidedown...
File:WHAM survey.png
WHAM survey.png
File:NGC6888 Ha JeffJohnson.jpg
NGC6888 Ha JeffJohnson.jpg
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