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Carbon-dioxide laser

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A special light can cut things.

Sharplan 40C.jpg
Sharplan 40C.jpg
This light comes from a gas. It is very strong. It can help doctors fix skin. It can even help make parts in a factory.
Carbon Dioxide Laser At The Laser Effects Test Facility.jpg
Carbon Dioxide Laser At The Laser Effects Test Facility.jpg
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48 words

A special kind of light can do big jobs.

Carbon Dioxide Laser At The Laser Effects Test Facility.jpg
Carbon Dioxide Laser At The Laser Effects Test Facility.jpg
This light comes from a mix of gases. One gas in the mix is carbon dioxide. The light is a type of heat light. You cannot see it with your eyes.
Sharplan 40C.jpg
Sharplan 40C.jpg
This light is very strong. It can cut and weld in a factory. Doctors also use it to help people. It can fix skin or help in a dentist's office. It is a very useful tool.

87 words

A carbon dioxide laser is a powerful tool. It makes a beam of infrared light.

Carbon Dioxide Laser At The Laser Effects Test Facility.jpg
Carbon Dioxide Laser At The Laser Effects Test Facility.jpg
This light is a type of heat light. You cannot see it with your eyes. Kumar Patel invented this laser in 1964. It uses a mix of gases inside a tube. This mix has carbon dioxide and nitrogen. It also has helium and sometimes hydrogen or xenon.
Sharplan 40C.jpg
Sharplan 40C.jpg

The laser works through a set of steps. First, electrons hit the nitrogen gas. This gives the nitrogen energy. Then, the nitrogen hits the carbon dioxide. This moves the energy to the carbon dioxide. The carbon dioxide then lets out light. Helium helps by cooling the gas down. This keeps the laser working well.

These lasers are used for many jobs. Factories use them to cut or weld metal. They can even fuse plastic powder into parts. Doctors use them for surgery on soft tissue. The light is good for this because bodies are mostly water. The water absorbs the light well. This helps doctors work with less bleeding. It can also be used in a dentist's office. Some lasers even help find distances in the military.

200 words

A carbon dioxide laser is a very powerful tool. It creates a beam of infrared light.

Carbon Dioxide Laser At The Laser Effects Test Facility.jpg
Carbon Dioxide Laser At The Laser Effects Test Facility.jpg
You cannot see this light with your eyes. It is a type of heat light. These lasers are very useful in our world today. They are among the highest-power lasers we can use. They are also quite efficient at turning power into light.
Sharplan 40C.jpg
Sharplan 40C.jpg

The way it works involves a special mix of gases. Inside a sealed tube, there is carbon dioxide and nitrogen. There is also helium and sometimes hydrogen or xenon. First, electrons hit the nitrogen gas to give it energy. This energy stays in the nitrogen for a short time. Then, the nitrogen hits a carbon dioxide molecule. This moves the energy into the carbon dioxide. Finally, the carbon dioxide releases the energy as light. Helium helps by cooling the gas down through collisions. This keeps the whole process working smoothly.

Kumar Patel invented this type of laser in 1964. He worked at Bell Labs when he made it. Since then, it has become one of the most useful lasers. Scientists have learned many ways to build them. Some use a sealed tube for the gases. Others use a flow-through system where gas is pumped through. This allows the laser to keep running. The design can change depending on the job it must do.

Building these lasers requires very special materials. Because the light is infrared, normal glass might not work. Mirrors are often coated in silver or even gold. Lenses and windows are often made of germanium or zinc selenide. Some very high-power lasers even use diamond windows. Diamond is very hard and stays cool easily. In the past, people used salt for lenses. However, salt would break down if it touched moisture in the air.

We use these lasers for many important tasks. Factories use them to cut or weld metal. They can even melt plastic powder to make new parts. Doctors use them for surgery on soft tissue. This is because the light is absorbed well by water. Most living things are made of a lot of water. This helps doctors work with less bleeding and swelling. They even use them in dentistry to help with teeth.

Sharplan 40C.jpg
Sharplan 40C.jpg

381 words

A carbon dioxide laser, often called a CO2 laser, is a powerful device that produces a beam of infrared light. This light is invisible to the human eye because it exists in the infrared spectrum. These lasers are among the highest-power continuous-wave lasers available today. They are also highly efficient, meaning they can convert up to 20% of their input power into useful light output.

Carbon Dioxide Laser At The Laser Effects Test Facility.jpg
Carbon Dioxide Laser At The Laser Effects Test Facility.jpg
Because they can produce such intense energy, they are essential in many scientific and industrial fields.

The mechanism of a CO2 laser relies on a specific sequence of energy transfers within a gas mixture. The active medium is a gas discharge contained in a tube. This mixture typically contains 10–20% carbon dioxide (CO2) and 10–20% nitrogen (N2). It also includes a few percent of hydrogen (H2) or xenon (Xe), with helium (He) making up the rest. To create the laser beam, a process called population inversion must occur. First, electron impacts excite the vibrational modes of the nitrogen molecules. Because nitrogen is a homonuclear molecule, it cannot release this energy as light. Instead, the energy stays stored in the nitrogen for a short time.

Sharplan 40C.jpg
Sharplan 40C.jpg

Next, these excited nitrogen molecules collide with carbon dioxide molecules. This collision transfers the vibrational energy to the CO2, pushing it into an excited state known as the asymmetric stretch. The CO2 molecules then release this energy as infrared light. They do this by dropping to different vibrational states, producing wavelengths centered around 9.6 or 10.6 micrometers (μm). To keep the process running, helium atoms are used to cool the CO2 molecules. In sealed lasers, the helium atoms strike the walls of the tube to release heat. In flow-through lasers, a pump moves the hot gas mixture out of the system entirely.

There are two main ways to construct these machines. A sealed laser uses a fixed amount of gas inside a discharge tube. A flow-through laser is different because the gas is continuously pumped through the device. These lasers can produce different levels of power. They can operate in a continuous wave (CW) mode, ranging from milliwatts to hundreds of kilowatts. They can also be "Q-switched," which uses a rotating mirror or an electro-optic switch to create massive bursts of energy. These peak powers can reach up to gigawatts (GW).

Building a CO2 laser requires specialized materials because the infrared light behaves differently than visible light. Standard glass is often unsuitable for the windows and lenses. Instead, manufacturers use materials like germanium or zinc selenide. For very high-power tasks, gold mirrors and diamond windows are preferred. Diamond is especially useful because it is extremely hard and has high thermal conductivity. This allows it to stay cool even in dirty or high-heat environments. Historically, scientists used salt, such as sodium chloride, for lenses. However, salt was not ideal because it would degrade when exposed to moisture in the air.

These lasers are incredibly versatile and are used in many different industries. In manufacturing, they are used for cutting, welding, and engraving metal. They are also used in selective laser sintering to fuse plastic powder into solid parts. In the military, they are used for rangefinding through LIDAR techniques. This works because the atmosphere is quite transparent to infrared light, allowing up to 80% transmission at these wavelengths. Even in semiconductor manufacturing, CO2 lasers help generate extreme ultraviolet light.

In the medical field, CO2 lasers are highly effective for soft-tissue surgery. This is because biological tissue contains a lot of water, which absorbs this specific frequency of light very well. This absorption allows doctors to perform procedures like skin resurfacing or removing vocal-fold lesions. Using a laser can result in less bleeding, shorter surgery times, and a lower risk of infection compared to traditional tools. They are used in many specialties, including dentistry, gynecology, and veterinary medicine. In some dental cases, the laser can even ablate hard tissue at temperatures as high as 5,000 °C.

664 words
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File:Carbon Dioxide Laser At The Laser Effects Test Facility.jpg
Carbon Dioxide Laser At The Laser Effects...
File:Sharplan 40C.jpg
Sharplan 40C.jpg
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