Laser Systems
LASER stands for light amplification by stimulated emission of radiation. We all know that light is an electromagnetic wave. Each wave has its own brightness and colour, and vibrates at a certain angle, called polarization. This theory also applies to laser light but it is more parallel than any other light source. Every part of the beam has almost exact same direction and so the beam will diverge very little. With a good laser an object at a distance of 1 km can be illuminated with a dot about 60 mm in radius. As it is so parallel, it can be focused to very small diameters where concentration of light energy becomes so high that you can drill, cut, or turn with the ray. It is also possible to illuminate and examine very tiny details with the lasers, thus it is used in surgical applications and CD players as also. It can also be made very monochromic, thus only one light wavelength is present. This is not the instance with the ordinary light sources. White light contains all colours in the spectrum, but even a coloured light, such as a red LED contains a repeated interval of red wavelengths.
Related Conference of Laser Systems
9th International Conference on Astronomy, Astrophysics and Space Science
6th International Conference on Applied Physics and Materials Science
9th World Congress on Emerging Trends in Science, Engineering and Technology
Laser Systems Conference Speakers
Recommended Sessions
- Advancements in Photonics
- Applications and Trends in Optics and Photonics
- Fiber Laser Technology
- Laser Systems
- Nano photonics and Bio photonics
- Optical Communications and Networking
- Optical Fiber
- Optical Physics
- Optics and Lasers in Medicine
- Optoelectronics
- Quantum Science and Technology
- Surface Enhanced Spectroscopy (SES)
- Technologies in Lasers, Optics and Photonics
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